Jeffrey R.
Bacon†
*a,
Owen T.
Butler
b,
Warren R. L.
Cairns
c,
Jennifer M.
Cook
d,
Christine M.
Davidson
e,
Olga
Cavoura
f and
Regina
Mertz-Kraus
g
a59 Arnhall Drive, Westhill, Aberdeenshire, AB32 6TZ, UK. E-mail: bacon-j2@sky.com
bHealth and Safety Executive, Harpur Hill, Buxton, UK SK17 9JN
cCNR-IDPA, Universita Ca’ Foscari, 30123 Venezia, Italy
dBritish Geological Survey, Keyworth, Nottingham, UK NG12 5GG
eUniversity of Strathclyde, Cathedral Street, Glasgow, G1 1XL, UK
fUniversity of West Attica, Leof Alexandras 196, 115 21 Athens, Greece
gInstitut für Geowissenschaften, Johannes Gutenberg-Universität, Becher-Weg 21, 55099 Mainz, Germany
First published on 21st November 2019
In the field of air analysis, highlights within the period covered by this review included a wearable air sampler with an inbuilt GPS sensor which enabled autonomous sampling to be performed at specific sites once the device had been preprogrammed with the requisite location coordinates. A prototype high resolution laser absorption spectroscopic instrument was developed as a potential SI-traceable alternative to ID-CV-ICP-MS for determining mercury concentrations in air and its isotopic composition. Improvements in the capabilities of single-particle aerosol mass spectrometers were noted. New measurements using tools such as LDI-MS and PTR-MS are providing new insights into the composition of carbonaceous particles. A large amount of effort continues to be directed towards multi-element preconcentration methods for water analysis, using either liquid or solid phase extraction to boost the sensitivity of instrumentation. Species-specific preconcentration methods were developed for the determination of mercury or arsenic species and methodologies employed to isolate elements from matrices such as seawater before isotope-ratio determinations. The focus of elemental speciation has shifted towards elemental fractionation with the determination of nano-sized fractions. The advent of ICP-MS/MS instrumentation has made the analysis of non-metallic elements such as F or P possible with improved detection limits. An interesting development of the isotope dilution technique was the use of isotopically labelled cell gasses to investigate the possibility of carrying out isotope dilution analysis of monoisotopic elements such as As or Y. Much effort has been devoted to characterising new and existing matrix-matched reference materials for calibration and quality control in the determination of the elemental and isotopic composition of geological samples. Zircon geochronology is a very active area of research and there is now considerable interest in developing U–Pb dating methods for other accessory minerals and carbonates. The application of in situ techniques such as LA-ICP-MS, SIMS, and LIBS to obtain geochemical information at high spatial resolution is another continuing theme. The ongoing interest in the optimisation of methods for extraction of analytes from soil and plants included developments relating to nanoparticles, estimation of bioavailability and non-chromatographic speciation analysis. The relative maturity of the AAS, AES and AFS techniques means that there have been few reports of major advances in these fields. Many of the developments in ICP-MS have been driven by the increased availability of ICP-MS/MS instrumentation. The importance of sample preparation in LIBS has increasingly been recognised. Proximal analysis – in which chemometric approaches are applied to data obtained by atomic (and molecular) spectroscopy to infer physical or chemical properties of a sample e.g. the pH of a soil – are becoming more common, in particular in relation to field-portable techniques such as LIBS and pXRFS, with increased attention being paid to the opportunities arising from data fusion.
An italicised phrase close to the beginning of each paragraph highlights the subject area of that individual paragraph. A list of abbreviations used in this review appears at the end. It is a convention of ASUs that information given in the paper being reported on is presented in the past tense whereas the views of the ASU reviewers are presented in the present tense.
Sampling trace gaseous species in the atmosphere is challenging. A new sampling system15 collected small aliquots (10 nmol) of carbonyl sulfide sufficient for reliable measurement of 32S/34S ratios. Salient features of this new portable system included: an ability to sample 500 L of air at a nominal flow rate of 5 L min−1; absorption tubes for preserving carbonyl sulfide samples for up to 90 days; and a purification system that removed matrix gases such as CO2. The determination of trace Hg concentrations in landfill gases or volcanic emissions can be problematical due to the presence of excess H2S. In a modification16 to existing impinger sampling trains, an alkaline trap containing NaBH4 was placed in front of two KMnO4 traps. This enabled H2S to be converted to S2− thereby preventing subsequent reaction with KMnO4 which is required to trap Hg0 as Hg2+. An added advantage was that this reductant trap minimised pre-oxidation of Hg0 to Hg2+ which could potentially be lost as an HgS2 precipitate. A new lightweight stratospheric air sampler weighing only ca. 2.5 kg was designed17 to collect CH4, CO and CO2 during the ascent of a balloon.
Certain lichens species are widely used in air pollution deposition studies because the concentration of various elements determined in their thalli can reflect the chemical composition in air. However, it was shown18 that different metals accumulate in different parts of the thalli so a well-defined and repeatable process in selecting the correct part of the plant was needed if consistent elemental air pollution data sets were to be generated over extended time periods. A new porous substrate19 was synthesised by heating and casting a mixture of silica fume (a by-product of the ferrosilicon metallurgical industry), alginate and sodium bicarbonate. The new substrate had the property of sequestering particulate matter from air when placed outdoors. Coarse particles trapped on its surface were removed by the simple process of sonication in distilled water and analysed using TXRFS. Smaller particles, interstitially trapped, were recovered following an aqua-regia/HF digestion of the substrate. The authors suggested that this new substrate fashioned from a waste material could have uses as a particle-size-selective scavenger.
The preparation of suitable and stable test aerosols for testing the performance of new air samplers can be challenging. Use of polydisperse test aerosols22 enabled the size-selective characteristics of new air samplers to be evaluated in a single test run. Previously, multiple challenge tests, each using a monodispersive aerosol to cover a segment of the desired particle-size range, were required. Current aerosol generation systems, such as spark discharge generators, typically produce very high particle-number concentrations, which without dilution are not representative of real-world emissions. There is therefore a need for producing low but stable airborne concentrations of nanosized particles that mimic real-world emissions. Monsé et al.23 interfaced a piezoelectric droplet generator to a flame atomiser so enabling small but well-defined volumes of metal-containing solutions to be metered into a flame atomiser which, upon vaporisation, generated low but stable number concentrations of metal oxide NPs. The characterisation24 of a candidate polyvinylpyrrolidone-stabilised palladium NP RM employed complementary SAXS, SEM, sp-ICP-MS and XRD techniques to provide useful size and compositional information.
New candidate filter-based (thin layer) XRFS calibrants, produced25 by a desolvating nebuliser, had low elemental loading and so mimicked real-world air filter samples. These calibrants are required because current commercially available filters have much higher and atypical elemental loadings. Their suitability as potential calibrants was confirmed in a follow-up interlaboratory study26 involving eight international institutes that used EDXRFS and ICP-MS. The characterisation27 of new thin-layer RMs intended for material testing purposes successfully used SR-XRFS to quantify mass depositions in the ng cm−2 range. In the future, such SR techniques will be most useful for characterising filter-based calibrants.
The isotopic analysis of trace atmospheric gases by IRMS is useful for understanding their origins and pathways and in recent years the complementary use of FTIR instruments for measuring greenhouse gases such as CH4 and CO2 has gained traction. Calibrant gases for IRMS are certified for data such as CO2 amount, δ13C and δ18C but optical analysers determine individual amounts of isotopologues such as 16O12C16O, 16O13C16O and 16O12C18O. Griffith et al.28 set out a practical guide for converting between the two equivalent descriptors and to derive isotope-specific calibrations for optical analysers. The WMO GAW sets stringent requirements for certified CO2 gas standards. Gas cylinders constructed in aluminium were proven29 to be suitable for storing ambient CO2-in-dry-air mixtures provided that they were not used at low pressures (<20 bar) because losses to cylinder walls then became significant. The precision (0.001‰ for the 45/44 and 46/44 ion signal ratios) of a dual-inlet IRMS system made it possible30 to generate data for CO2 gas samples stored in cylinders for potential use as RMs. In an international comparison exercise,31 a new value of 7.12 ± 0.06 ppt for the 3He mixing ratio in an air standard was 1–2% lower than values previously determined but remained statistically consistent.
The improvement of extraction, preconcentration and separation methods is a goal pursued by many researchers. A new semi-automatic apparatus33 enabled samples for the determination of 14C to be processed in <30 minutes with a CO2-to-graphite conversion efficiency of ca. 75% and an instrumental blank of ca. 1.2 pM C. An improved method34 for liberating 129I from aerosol samples involved high temperature pyrolysis and AgI–AgCl coprecipitation. Recoveries were ca. 82%. The calculated LOD of 1.3 × 104 atoms per m3 was a 3-fold improvement over that achievable using conventional alkaline-ashing and solvent extraction. Radiocarbon studies are useful in distinguishing between fossil and non-fossil sources of airborne carbonaceous particles. Hydropyrolysis (550 °C; 15 MPa H2) liberated35 elemental C effectively from aerosol samples so ensuring that 14C measurements were free from matrix effects. In the analysis of swab samples used in nuclear safeguarding, a procedure36 involving Eichrom TEVA® and UTEVA® cartridges made it possible to separate fg amounts of Pu and U species for MC-ICP-MS analysis.
A simulant lung fluid, Gamble’s solution, was used37 in a bioaccessibility assessment of PGEs in inhaled road dust. The mean PGE values in inhalable-sized dust samples as determined by INAA following preconcentration using a NiS2 fire assay were 152, 152 and 21 μg kg−1 for Pd, Pt and Rh, respectively. The corresponding bioavailability fractions were 3.4, 16 and 14%, respectively. In another study,38 up to 77% of the Pb in airborne particulate matter was found to be soluble in gastric juice or lung fluid simulants suggesting that prolonged inhalation could pose a health risk. Initially, portions of air filter samples were analysed by SS-ETV-ICP-AES to determine total concentrations of As, Cd, Cr, Cu, Mn, Ni, Pb, Sr, V and Zn. Subsequently, other portions were extracted in saliva, gastric juice or lung fluid simulants to derive bioaccessibility values. A concern39 that functional groups on the surface of quartz or PTFE filter fibres could perturb the bioaccessibility fractions of metals in collected particles proved unfounded.
In a modification40 of a method for the fractionation of Ni species in workplace air samples, commercially available disposable DigiFilters® were successfully employed to perform a four-stage sequential leach procedure (the well-established Zatka procedure).
The use of EDTA as a chelator in the speciation of SbIII and SbV in PM2.5 improved41 extraction efficiencies as well as species stabilities. The method LOQs were 0.10 and 0.06 ng m−3 for the SbIII and SbV species, respectively, when HPLC-ICP-MS was used. These two species accounted for 60% of the certified Sb content in NIST SRM 1648a (urban particulate matter). Of the total Sb extracted from urban air PM2.5 samples, 69–87% was as SbV.
A prototype aerosol LIBS system43 detected every particle when challenged by 200 nm-sized CaCl2 test particles at a concentration of ca. 4000 particles per cm3. The aim was to develop a diagnostic system for the real-time monitoring of particles generated during a semiconductor manufacturing process because product quality can be compromised by airborne contaminants. The generation of electricity from renewable fuels such as biomass is growing but feedstocks containing high concentrations of alkali chlorides and sulfates can cause corrosion within power plants. There is therefore a need for new real-time diagnostic capabilities in process monitoring. The analytical performance of conventional LIBS measurements was significantly improved44 by introducing microwave radiation to the laser-induced plasma. Linearity was enhanced and the LODs were improved up to 60-fold to 16, 19 and 10 ppb for Ca, K and Na, respectively.
There is ongoing interest in the potential of sp-ICP-MS. A wide-ranging tutorial review49 (231 references) on the use of ICP-MS for analysis at the nanoscale presented the relative merits of this technique and others such as LA-ICP-MS and FFF-ICP-MS. Three sample introduction systems evaluated50 for sp-ICP-MS applications were a HEN, a total consumption nebuliser and a more conventional concentric-cyclonic spray chamber combination. The HEN was preferred because smaller particles at lower particle number-concentrations could be detected.
A revised LA-ICP-MS protocol51 for the elemental analysis of size-segregated particles employed a glycerol coating to fix particles once they had impacted on a sample collection plate. This minimised any subsequent loss during the ablation process. Quantification was achieved by ablating dried-spot calibrants prepared from aqueous standard solutions. The LODs were 0.01–0.1 ng m−3. The potential of a TOF system to acquire data from short duration events such as LA was demonstrated52 in the isotopic analysis of μm-sized U RM particles deposited on carbon discs. Precisions (<0.4%) for measurements of the 235U/238U ratio better than those achievable by LA-MC-ICP-MS could be obtained when due care was taken in correcting for peak tailing of 238U and by working within the linear ranges of the detector.
Organosulfur compounds are important components of SOAs but there have been difficulties in interpreting their mass spectra when analysed by aerosol mass spectrometry. Close examination of the mass fragmentation patterns of organosulfur compounds and inorganic sulfates made it possible56 to deconvolute the total sulfate signal into inorganic and organic components. It was demonstrated that 4% of measured sulfate in aerosols from Southeastern USA was organosulfur. This was considered not to be a negligible proportion. The authors suggested that other aerosol MS datasets should be examined using this approach so that a better global estimation could be derived. A collection efficiency factor is required in aerosol MS studies to account for loss of particles due to bounce within the inlet and vaporisation units. A new sample introduction system, designed to minimise such losses, shifted57 fragmentation patterns to smaller molecular ion masses compared to those obtained using the original sample inlet. These shifts were attributed to increased thermal decomposition effects arising from an increase in the residence time of particles within the new inlet and hence more collisions with hot surfaces. To aid others in the aerosol MS community contemplating using this new system, the authors usefully made available a web-based database of mass spectral data generated with the new inlet. Whereas the elemental analysis of extracts of organic aerosols typically requires mg quantities of sample, a new approach58 required only μg quantities. A USN enabled μL quantities of extracts from air filter samples to be aerosolised as droplets in the 100–300 nm size range. This provided sufficient sample mass for reliable measurements by aerosol MS, even with a transport efficiency as low as 0.1%.
The doubly substituted isotopologues of atmospheric O2 are potentially useful as tracers for studying O3 chemistry. The use of a new isotope ratio method59 at medium mass resolution (M/ΔM = 10000) enabled isotopic measurements free from interferences to be made. Complementary techniques were used in tandem to provide a better understanding of carbonaceous aerosols. In an interesting study,60 the OM in size-segregated particles was thermally desorbed at temperatures between 100 and 350 °C. The OM desorbed at <200 °C was classified as less-refractory C and that desorbed at >200 °C as more-refractory C. Liberated volatile compounds were analysed by IRMS and by PTR-MS. Fossil-fuel burning was the dominant source of less-refractory OM in the smallest particles examined (D50 < 0.18 μm) whereas biomass burning was the dominant source of the more-refractory OM in the larger particle size ranges (0.32 < D50 < 1 μm).
Other mass spectrometry developments included refinements to an airborne HR-TOF-CIMS system61 which enabled a better discrimination of nocturnal but reactive nitrogen oxide species to be made. A new method62 for the size-resolved chemical analysis of nanoaerosol particles used a TD-differential mobility analyser in conjunction with CIMS. An IR TD DART approach was used63 to determine both non-volatile inorganic and organic components of particulate residues of explosives collected as surface swab samples. A revised procedure64 for the simultaneous measurement of Pu and U isotopes in individual radioactive particles used SEM in conjunction with a new large-geometry SIMS-based scanning ion-imaging method.
A short overview article illustrated66 how TXRFS could be used for the analysis of small airborne particles. It also described an application for assessing the release of silver NPs from fabrics. In a new sampling method,67 Hg0 was sampled passively from workplace air directly onto silver-NP-coated TXRFS quartz reflectors. The use of quartz reflectors as impaction plates to collect size-segregated particles directly has been proposed13 and further details can be found in Section 2.1.
The use of synchrotron-based X-ray techniques for the analysis of radioactive particles released from the Fukushima Daiichi nuclear power plant incident was comprehensively reviewed68 (66 references). The XAS data69 from the analysis of PM2.5 emitted from the combustion of residual oil identified a dominant ZnSO4·7H2O species. The authors suggested that this speciation detail was valuable for source apportionment and health effect studies and for establishing a connection between the two. Hair samples are often used to assess exposure to certain metals. Both μSR-XRFS and XANES were used70 to map the Pb distribution across and along strands of hair and to identify possible Pb species. Results suggested that Pb binds with cysteine from keratin in the cortex. The dominant Pb species identified were Pb3(PO4)2 and Pb bound to cysteine.
Determining elemental carbon in emissions from marine diesel engines is challenging as the chemical composition and physical properties of particles can vary and depend on the type of engine, the composition of the fuel and the type of emission controls deployed. For such samples, the EUSAAR2 combustion protocol performed73 better than the alternative NIOSH 5040 protocol in distinguishing elemental carbon from other carbon forms present in filter samples. In a confirmatory interlaboratory trial, filter samples were sent to three participants, all using the EUSAAR protocol. The between-laboratory RSD was 2–28% with an average of 10%.
Correlations between black carbon measurements and elemental C measurements were established74 by optically scanning air filter samples collected from different locations and then applying the EUSAAR2 combustion protocol. This protocol is mandated in the EN 16909 standard that underpins the EU regulatory measurements of elemental C in ambient air. The rationale behind this work was to ascertain whether a fast and non-destructive optical method for measuring black carbon could be used as an alternative to the slow and destructive reference combustion method. The study confirmed that this was indeed possible but with the caveat that site-specific correlations between the two methods need to be initially established because the chemical composition and physical properties of soot particles (combustion and optical properties) can vary from location to location. In an inter-comparison exercise,75 six different instruments for measuring black carbon were exposed to smoke from the burning of biomass. The deviations between instruments became more substantial with increasing organic content of the emitted particles.
Analysis of air filter samples by FTIR can be rapid. Results for NH4+ and NO3− concentrations in PM2.5 measured by ATR-FTIR correlated well76 with those obtained by a more conventional IC assay that involved a water extraction step. This new assay was considered to be most useful for monitoring transient air pollution episodes given that filter screening took only ca. 7 minutes and method sensitivity was not of prime importance. Silicosis is a particularly unpleasant lung disease caused by inhaling crystalline silica dust. A field-portable FTIR method77 was proposed by NIOSH for the analysis of crystalline silica in dust collected on air filters from mine workers’ personal samplers. Since mineralogy varied from mine to mine, interferences from other phases in the measured FTIR spectrum of silica could lead to significantly biased results if left uncorrected. Such corrections involved the detailed XRD examination of these other mineral phases in representative settled dust samples to interpret collected FTIR spectral data better, the use of spectral deconvolution software and the establishment of a location-specific cross-calibration between FTIR measurements and laboratory-based XRD silica measurements (NIOSH method 7500). In this way it was possible to restrict the difference between FTIR measurements and reference laboratory XRD measurements to 2.8%. Although considerable effort may be required to set up this new method at a worksite, on-site FTIR measurements can be rapid so allowing the timely monitoring of miners’ exposure. An in situ, real-time compact FTIR system78 with a hollow waveguide as a miniaturised gas cell was used to measure NO, NO2 and N2O concentrations simultaneously. The LODs were 10, 1 and 0.5 ppm for NO, NO2 and N2O, respectively. Possible future refinements included the use of preconcentration techniques and/or tunable cascade lasers to increase sensitivity.
Two papers demonstrated current analytical performance for the determination of Hg in drinking waters. A LOD of 0.03 ng L−1 could be achieved82 routinely using a commercially available AFS instrument with a dual amalgamation system. Good comparability between results obtained in three laboratories for Ag, silver NPs and trace elements in a Dutch water channel demonstrated83 the high accuracy and reproducibility of analytical methods currently in use.
A double ID-HR-ICP-MS method86 was used to determine reference values for Ca, K, Mg and Na in the candidate drinking water NRCC CRM AQUA-1. The method was validated by the analysis of the NRCC CRMs SLRS-5 and SLRS-6 (river waters) and the NIST SRM 1640a (natural water).
Analytes | Matrix | Substrate | Coating or modifier | Detector | LOD in μg L−1 (unless stated otherwise) | Validation | Reference |
---|---|---|---|---|---|---|---|
Ag, Cd, Co, Fe, Ni, Pb, Zn | Water | Pencil lead, CNTs, polypyrrole | 1,10 phenanthroline | ICP-MS | 0.012 (Ag)–0.163 (Fe) | HPS CRM TMDW (trace metals in drinking water) | 327 |
AsIII or AsV | Water | Graphene oxide | Polyethylenimine | HG-MIP-AES | 1.3 (AsV)−1.8 (AsIII) ng L−1 | NIST SRM 2669 (arsenic species in frozen human urine) and spike recovery | 328 |
AsIII and AsV | Tap water and synthetic seawater | CeO2/ZrO2 mixed binding gel | None | HG-AFS | 0.06 (AsIII) and 0.08 (AsV) | Not reported in abstract, paper in Chinese | 158 |
AsV, Cd, Co, CrIII, Cu, Ge, Ni, Pb, Sb, SeIV, Sn, Ti, U, V, W, Zn, Zr | Seawater | InertSep ME2 chelating resin | Fe(OH)3in situ coprecipitate | ICP-MS | 0.1 (Sb) to 7.4 (Ti) ng L−1 | Spike recovery | 329 |
AsIII, AuIII, BiIII, CoII, HgII, NiII, PbII, SeIV | Water | Graphene membranes on glass support | APDC | TXRFS | 0.15 (Se) to 0.5 (Bi) | Merck CRM QC1187 (trace metals-ICP sample 1) and CRM QC1014 (trace metals AA sample 1) | 330 |
Cd | Tap water | Mesoporous silica | CTAB and a doubly imprinted polymer | ETAAS | 0.001 | Spike recovery | 331 |
Cd | Water and oysters | CoFe2O4 magnetic NPs | None | FAAS | 0.24 | NIST SRM 1566b (oyster tissue) and spike recovery | 332 |
Cd, Co, Cu, Fe, Mn, Mo, Ni, Pb, Ti, V, Zn | Ground and waste water | Particulate polyethylene | Sintered Presep® PolyChelate | ICP-AES | 0.007 (Cd) to 0.160 (Zn) | SCP science RMs EnviroMAT ES-L-1 (ground water) and EU-L-3 (waste water) | 333 |
Cd, Pb | Bottled and tap water | Fe3O4 coated with SiO2 | Thiol-rich polyhedral, oligomeric silsesquioxane | ICP-AES | 0.08 (Cd) and 0.12 (Pb) | BMEMC GBW08608 (natural water) | 334 |
Cd, Pb | Water | Graphene oxide coated with metallic Ag | Triton X-114 | ETAAS | 2 (Cd) and 30 (Pb) ng L−1 | NIST SRM 1640a (trace elements in natural water), IRMM ERM-CA011b (hard drinking water), Environment Canada CRM TMRain-04 (simulated rain water), and RMs TM-25.4 (low level fortified lake water) and TM-23.4 (fortified lake water) | 335 |
Cd, Cu, Pb | Water | Magnetic Ambersorb-563 resin | 1-Nitro-2-naphthol-3, 6-disulfonic acid disodium salt | FAAS | 1.4 (Cd) to 5.8 (Cu) | NWRI EC CRM TMDA-53.3 (fortified water) and spike recovery | 336 |
Cd, Cu, Ni, Pb | Waste water | Graphene nanoplatelets | None | ETAAS | 0.4 (Cu) to 5.4 (Pb) | HPS RM CWW-TM-E (waste water) | 337 |
Co, Hg | Tap, mineral and lake waters | Fe2O3 NPs | Pleurotus eryngii (fungus) | ICP-AES | 0.01 (Co) and 0.06 (Hg) | NIST SRM 1643e (trace elements in water), SCP science RM EU-L-2 (waste water), NWRI EC RM NWTM-15 (fortified water) | 338 |
Co, Ni | Tap, well and river water, tea and spinach leaves | Sodium dodecyl, sulfate-coated Fe3O4 NPs | 2-Nitroso-1-naphthol | FAAS | 0.09 (Ni) and 0.4 (Co) | Spike recovery | 339 |
CrIII | Natural water | Nanographite | Al2O3 | EDXRFS | 0.04 | NIST SRM 1640a (trace elements in natural water) | 340 |
Cr | Bottled, tap, river and sea water | Microcrystalline cellulose | Triton X-100 and CPE | ETAAS | 6 ng L−1 | Environment Canada CRM TMRain-04 (simulated rain water), Environment Canada RMs TM-25.4 (low level fortified lake water) and TM-23.4 (fortified lake water), NIST SRM 1640a (trace elements in natural water) and NRCC CRM NASS 6 (seawater) | 341 |
Labile CrIII and CrVI | River water | ZrO2 binding gel as a DGT sampler | None | HPLC-ICP-MS | 0.05 (CrIII) and 0.02 (CrVI) | Comparison with an in-house standard method | 342 |
Er | Water | Graphene oxide nanosheets collected by Fe3O4 microparticles | 3-Hydroxy-N′-[(1Z)-pyridin-2-ylmethylidene]naphthalene-2-carbohydrazide | HR-CS-ETAAS | 6 ng L−1 | analysis of an unspecified reference solution and spike recovery | 343 |
FeII and FeIII | Water and seawater | 3D printed acrylate resin | None | ICP-MS | 1–2 ng L−1 (FeIII) and 1 ng L−1 (FeII) | NRCC CRM SLEW-3 (estuarine water), and NIST SRMs 1640a (natural water) and 1643e (trace elements in water) | 344 |
Hg | Water | PVC membrane | Dithizone | TXRFS | 0.3 | Spike recovery | 345 |
Hg | Water | Silica wafer | Gold NPs | TD-GC-AFS | 0.8 ng L−1 | NRCC CRM ORMS-5 (elevated mercury in river water) | 346 |
Hg2+ and MeHg | Water and fish | Polypropylene hollow fibre | Toluene (MeHg) and DDTC plus 1-octanol (Hg2+) | ETAAS | 0.06 (MeHg) and 0.14 (Hg2+) | Spike recovery (water) and NIST SRM 1566b (oyster tissue) | 347 |
Hf, Nb, Ta, Zr | Seawater | UTEVA® resin | None | ICP-MS | 0.03 (Ta) to 0.15 (Zr) pmol kg−1 | Spike recovery and comparison with standard method | 348 |
Pb | Tap, river and well water plus fruit juices | Graphene oxide | 4-(2-Pyridylazo)resorcinol and Fe2O3 | ETAAS | 0.18 ng L−1 | ERA QC solution concentrate 1340 (metals in clean water) | 349 |
226Ra | Natural water | Analig® Ra-01 | None | ICP-MS/MS | 68 mBq L−1 (Scott Spay Chamber), 8 mBq L−1 (heated nebuliser system) | SPIKE recovery | 350 |
REEs | Tap and river water | Calcium alginate microparticles | None | ICP-MS | 0.01 (Tb) to 0.03 (Yb) | Spike recovery | 351 |
REEs | Tap, river and seawater | Silica | Pyrolised lignin | ICP-MS | 0.4 to 0.6 ng L−1 (for unspecified elements) | Spike recovery | 352 |
Rh, Pd, Pt | Seawater | NOBIAS chelate-PA1 resin | None | ICP-MS | 16.5 (Pt) to 26.9 pg L−1 | Spike recovery | 353 |
SeIV | Natural water | Fused silica capillary | Ethylenediamine modified poly(glycidyl methacrylate-ethylene dimethacrylate) | ICP-MS | 14 ng L−1 | BMEMC, GBW(E)080395 (environmental water) | 354 |
Se | Rain, tap, underground and seawater | Nanosilica | APDC | ETAAS | 1.4 ng L−1 | NIST SRM 1643e (trace elements in water) | 355 |
ThIV, UVI | Tap, river and lake water | Fe2O3 NPs | Bovista plumbea (fungus) | ICP-AES | 0.02 (both elements) | NRCC CRM CASS 4 (near shore seawater) and NWRI EC RM NWTM-15 (fortified water) | 356 |
TlI | Water | Aminodibenzo-18-crown-6 functionalised Fe3O4 NPs | Metal organic framework MIL-101(Cr) | ETAAS | 1.5 ng L−1 | NIST SRM 1643d (trace elements in water) and spike recovery | 357 |
UVI | Water | 3D printed polymeric device | TEVA® resin and Aliquat®336 (trioctylmethylammonium chloride) | ICP-MS | 0.032 ng (from a 30 mL sample) (1 ng L−1) | Intercomparison water sample CSN/CIEMAT 2011 | 358 |
Analytes | Matrix | Method | Reagents | Detector | LOD in μg L−1 (unless stated otherwise) | Method validation | Reference |
---|---|---|---|---|---|---|---|
Silver NPs | Waste water | CPE | Triton X-114, EDTA and Na2S2O3 | ETAAS | 0.04 | Spike recovery comparison with sp-ICP-MS | 359 |
Silver NPs | Environmental water samples | DLLME | Acetonitrile/water and 1-octanol and Na2S2O3 | FAAS | 6.5 | Spike recovery | 360 |
Silver and gold NPs | Mineral, tap, river and seawater | CPE | Triton X-114 and Na2S2O3 | TXRFS | 0.3 (Ag) and 0.2 (Au) | Spike recovery | 361 |
Ag, Cd, Pd | Tap, river, waste and hyper saline water | SBME | Cyphos® 101 ionic liquid (trihexyl(tetradecyl)phosphonium chloride) | ICP-MS | 7 ng L−1 (Pd) to 21 ng L−1 (Ag) | Spike recovery | 362 |
Be | Effluent, seawater and tap water | CPE | Triton X-114 and graphene oxide micro-suspension | ICP-AES | 0.005 | NIST SRMs 1640, 1640a and 1643e (trace elements in water) | 363 |
Cd | Drinking and ground water | DLLME | APDC, Triton X-114 and 1-butyl-3-methylimidazolium hexafluorophosphate | FAAS | 0.05 | NIST SRM 1643e (trace elements in water) | 364 |
Cd, Cu | Tap water | DLLME | Decylguanidinium chloride, N,N-bis(salicylidene)thiocarbohydrazide and lithium bis[(trifluoromethyl)sulfonyl]imide | FAAS | 0.3 (Cu) and 0.5 (Cd) | Spike recovery and a drinking water round robin control sample | 365 |
CrVI and total Cr | Mineral water | UAE | Tributylphosphate and KMnO4 | ETAAS | 0.85 ng L−1 | Spike recovery | 366 |
Co, Ni | Surface, well and river water | LLME | 3-Picoline (3-methylpyridine), NaCl | ETAAS | 2.2 (Ni) and 3.8 (Co) ng L−1 | Spike recovery and NRCC CRM SLRS-4 (river water) | 367 |
Cu | Tap, river and well water | Air assisted LLME | Triton X-100, Fe3O4 NPs, 1-hexyl-3-methylimidazolium hexafluorophosphate | ETAAS | 0.5 | Spike recovery | 368 |
Eu, Gd, La, Nd, Yb | Tap, ground and seawater | Vortex-assisted DLLME | Butan-1-ol, 1-(2-pyridilazo)2-naphthol and NaCl | ICP-AES and ICP-MS | ICP-AES 0.3 (Eu) to 1.0 (Nd). ICP-MS 3.0 (Gd) to 4.0 (Nd) ng L−1 | NRCC CRM CASS-4 (near shore seawater) and spike recovery | 369 |
Hg2+, CH3Hg+ | Waste water | Sequential CPE | Potassium-iodide and methyl green (Hg2+) and APDC (CH3Hg+), Triton X-114 | CV-AFS | 0.007 (Hg2+) and 0.018 (CH3Hg+) | Spike recovery and BMEMC GBW08603 (water) | 370 |
Sb | Bottled, river and tap water | Single drop LLME | N-Benzoyl-N-phenylhydroxylamine and 1-butyl-3-methylimidazolium hexafluorophosphate | ETAAS | 0.01 | Spike recovery | 371 |
Sb, Sn, Tl | Potatoes, carrot, beetroot, canned beans, canned tomatoes, spinach and water | Ultrasound-assisted CPE | Triton X-114, SDS and 1-(2-pyridylazo)-2-naphthol | ICP-AES | 0.007 (Sn) to 0.01 (Tl) | NIST SRM 1643e (trace elements in water), EC RM TMDA-52.3 (fortified lake Ontario water) | 372 |
V | River and drinking waters tomato, spinach and potato | LLME | Bromo-2-(pyridylazo)-5-diethylaminophenol, decanoic acid and 1 M H2SO4 | ETAAS | 0.008 | NRCC CRM SLRS-4 (river water) and NIST SRM 1515 (apple leaves) | 373 |
A SPE-ICP-MS method for studying the fractionation of Cu in riverine, estuarine and seawaters89 relied on the specific extraction of the target analytes (hydrophobic Cu, CuI and CuII) in the field onto a C18 SPE cartridge. Hydrophobic Cu was absorbed on the cartridge unmodified whereas CuI was retained as a complex with bathocuproin disulfonate. Partial reduction of CuII was prevented by addition of the complexing agent EDTA. Finally, the CuII was retained together with CuI after reduction with ascorbic acid. The quoted ICP-MS LOD for Cu of 0.0008 μg kg−1 was sufficient for the characterisation of waters from the Tokushima prefecture in Japan.
An existing IC method for Cr speciation with colorimetric detection was adapted90 for use with ICP-MS detection to make it more robust when applied to waste waters containing high levels of other transition metals. The CrIII species were chelated with 2,6-pyridinedicarboxylic acid to prevent redox interconversion and so obtain only one peak for all the CrIII species. In order to reduce the amount of salts entering the plasma, NH4OH instead of NaOH was used to adjust the pH of the mobile phase. The column length was shortened from 250 to 50 mm so a lower flow rate could be used through the column. The LODs of 0.092 and 0.077 μg L−1 for CrIII and CrVI, respectively, obtained using ICP-MS in collision mode and monitoring at m/z 52, were two orders of magnitude better than those of the colorimetric methods using 1,5-diphenylcarbazide proposed in ISO 11083 and the Japanese JIS K0102 standard methods.
The wider availability of ICP-MS/MS instrumentation means that some non-metallic elements and their compounds can now be determined in water samples. In the determination91 of PFASs, a class of widely used fluorinated compounds, the target compounds were separated by a previously developed RP HPLC procedure. Fluorine was detected as the polyatomic ion [138Ba19F]+ after post-column addition of Ba to the eluent. To reduce interferences, both quadrupoles were set to m/z 157 and O2 introduced as a reaction gas. The use of ICP-MS as an element-specific detector enabled the detection of some PFASs that are difficult to ionise using an ESI or APCI source and so made it possible to screen waters for unknown or uncharacterised PFASs. The instrumental LOD was 0.5 mg F L−1 using perfluorooctanoic acid as the calibrant. By preconcentrating a litre of river water, μg L−1 LODs were achievable. A direct HPLC-ICP-MS/MS method92 was developed for the determination of glyphosate, its breakdown product aminomethylphosphonic acid and other organophosphorus herbicides. All ions with a m/z of 31 were reacted with O2 to shift the P peak to m/z 47. The LOD for P of 0.1 μg L−1 was 20-fold better than that achievable using single quadrupole ICP-MS with CCT. No derivatisation was needed when the analytes were separated using a Hamilton PRP X-100 anion-exchange column. The higher sensitivity of ICP-MS/MS meant that no preconcentration step was required, making this method faster and more robust than HPLC-ESI-MS/MS methods.
Deficiencies of the US EPA method 1630 (2001) for methyl mercury in water by distillation, aqueous ethylation, purge and trap and CV-AFS detection were addressed93 in an improved distillation method. Use of sodium tetra (n-propyl)borate as derivatising agent meant that EtHg could be determined. As previous studies had shown that addition of CuSO4 can break the CH3Hg–S bond, thereby releasing organomercury compounds from samples with high sulfide levels, 100 μL of 1% m/v CuSO4 was added to the sample to improve the recovery of EtHg in river water from 38 to 86%. Using GC-CV-AFS detection of Hg, recoveries were 85–113% and 80–88% for MeHg and EtHg, respectively. The corresponding MDLs were 0.007 and 0.004 ng L−1. Further work was needed to prevent the methylation of Hg2+ in samples with high concentrations of Hg.
The speciation of Se in water remains of interest. A rapid (5 minutes) IC-ICP-MS procedure94 for separating SeIV, SeVI, seleno-DL-methionine and Se-(methyl)selenocysteine hydrochloride involved use of a Dionex AS7 anion-exchange column with dilute HNO3 as the mobile phase (step gradient from 50 to 400 mM at 2 minutes). Using an ICP-MS instrument with H2 as the reaction gas, Se was quantified at m/z 80 with LODs of 4 and 9 ng L−1 for the inorganic species and seleno-DL-methionine, respectively. The method was validated by spike recovery from river water samples and analysis of NIST SRM 1640a (trace elements in natural water) certified for total Se. This study demonstrated that it is possible to obtain acceptable LODs without the need for preconcentration or other sample pretreatment.
Although the determination of nanoparticles in water becomes more commonly reported in the literature, much of the research has involved addition of NPs to water samples and then analysis. Emphasis is, however, switching to developing simpler fractionation methods for determining NPs in real samples. In a simplified method for the fractionation of dissolved or nanoparticulate Au in water,95 the AuIII ions and gold NPs were selectively extracted onto the surface of Fe3O4 magnetic NPs in the presence of different reducing agents. The addition of 1 M Na2S2O3 to the sample reduced the dissolved AuIII present to the [Au(S2O3)2]3− complex that had no affinity for the magnetic NPs. This resulted in a selective extraction of gold NPs from the sample. For the determination of total Au, 1 M ascorbic acid was added to a second aliquot to slowly reduce the AuIII to Au0, which was also adsorbed onto the surface of the Fe3O4 magnetic NPs. The Au-rich Fe3O4 NPs were separated from the samples by application of a magnetic field. After removal of the supernatant, the NPs were injected into an ETAAS system for determination of Au. The MDL of 20 ng L−1 was independent of the Au form for a 200-fold sample enrichment factor. This method was rapid and did not require elaborate back extraction procedures but unfortunately it did not allow particle sizing to be performed. The release of toxic NPs into aquifers from underground ore sources in Inner Mongolia was studied.96 The naturally occurring NPs were collected in polyethylene bottles and deposited onto carbon-coated nickel TEM grids before visualisation by high-resolution TEM and analysis by EDXRFS. The most abundant NPs contained Cu, Fe, Pb and Zn. Some samples contained NPs rich in As, Bi, Cr, Mn, Sb and Sn. The As, Pb and Sb concentrations determined by ICP-MS exceeded Chinese drinking water limits, whereas those for Co, Cr, Cu, Mo, Ni and Zn did not. This suggests that ICP-MS screening for the assessment of groundwater quality does not taken into account the hazards posed by the presence of NPs. The authors concluded that NP analysis should also be carried out occasionally during groundwater safety assessments, especially when the presence of ore bodies is suspected.
Surface waters from a Brazilian mining area were analysed99 for rare earth elements by CS-HR-AAS. With the instrument in fast sequential mode to maintain sensitivity, a segmented-flow FI sampling system to reduce sample uptake, a nitrous oxide-acetylene flame and KCl as an ionisation buffer in undiluted samples, LODs of 0.004 (Eu) to 0.5 (Tb) μg mL−1 could be achieved when 10 REEs were measured in triplicate in 15 mL samples. The results were comparable to those obtained with an ICP-MS instrument.
The improvement of photochemical vapour generation continues, with the vogue seeming to be the addition of metal ions to improve VG efficiency. Zhou et al.101 found that whereas Fe3+ in formic acid produced an enhancement for only AsIII, the use of 30% v/v acetic acid spiked with Cd at a final concentration of 20 mg L−1 resulted in a 10-fold signal improvement for both AsIII and AsV. With AFS detection, the LOD was 0.05 μg L−1. The method was validated by spike recovery from river waters and comparison of the results with those obtained by ICP-MS analysis of the same waters. The addition of 60 μg mL−1 Fe3+ to the acetic–formic acid mixture increased102 greatly the reaction kinetics and efficiency of VG of (CH3)3Bi from Bi3+ present in solution. With ICP-MS detection, the sensitivity was improved 30 times compared to that for solution nebulisation and resulted in a LOD of 0.3 ng L−1. Accuracy was demonstrated by quantitative spike recoveries from tap, lake and river waters. Molybdenum VG was improved103 up to 15 times by the addition of Co2+ and Cu2+ ions to a 20% v/v formic acid solution and resulted in an ICP-MS LOD of 6 ng L−1. Soukal et al.104 found that the addition of mg L−1 concentrations of Fe3+ improved the VG of Mo from a 30–50% (w/v) formic acid reaction medium; the ICP-MS LOD was 1.2 ng L−1.
The use of vapour generation for improving the detection limits of lower cost detectors is common. When HG was employed105 with LIFS in the determination Ge in water, use of 2 M H3PO4 instead of HCl as the acid carrier made the method more sensitive and less dependent on the acid concentration. With 0.5% m/v NaBH4 as the reductant, laser excitation at 253.323 nm and fluorescence measurement at 303.907 nm, the LOD was 0.1 ng mL−1. Quantitative recoveries were obtained for a 20 ng mL−1 spike in NIST SRM 1643e (trace elements in water) for which there is no certified Ge concentration. The MIP-AES LOD for Ni was improved106 by using 70% m/v formic acid as carrier and diluent solution to generate volatile Ni(CO)4. The LOD of 0.3 μg L−1 was 80-fold better than that obtained using conventional nebulisation. Results for the Chinese CRM (BMEMC) GBW(E)080405 (natural water) agreed with the certified values.
The accurate determination of mercury in many liquids (groundwater, hydrothermal fluids and acid mine drainage) can be limited because the high levels of H2S present can poison the gold traps used to preconcentrate Hg prior to CV-AFS analysis. This problem was resolved16 by using a series of impingers. The first contained an alkaline trap with NaBH4 to convert H2S to the S2− ion which did not then react with the KMnO4 solution used to trap Hg in the following two impingers. The ability to trap 98% of the volatile Hg present in a 25 L sample in a few mL of KMnO4 was a big advantage for field work as only the trapping solution and not 25 L of sample needed to be transferred to the laboratory. Determination of Hg speciation in oil production waters was simplified107 by using a UV reactor instead of more complex extraction procedures. After cold VG with SnCl2, inorganic Hg was detected by a “portable” long-path-length Zeeman AAS instrument. The total Hg concentration was then determined using the same method after UV photoreduction of the sample. The CH3Hg+ concentration was reported as the difference between total and inorganic concentrations. The LOQ was 12 ng L−1. Results compared well with those obtained using the standard GC-CV-AFS method. The authors concluded that the portability of the instrumentation coupled with the reduced complexity of the sample preparation meant that this method could easily be employed on oil production platforms.
The severity of possible matrix effects has been assessed110 during the analytical run by applying a PCA-based machine-learning algorithm to background signals from nine species of Ar, H and O that occur in a plasma. When applied to the determination of Cd, Co, Cr and Pb in seawater, this procedure could be used to identify when an external calibration was not applicable. This proof-of-concept was designed to inform decisions on calibration strategies for complex matrices and so could also be applied to other matrices. It was perhaps unsurprising that the best results were obtained when seawater was diluted at least 10 times before analysis. This algorithm should help inexperienced operators improve their results whilst learning the limits of their instrumentation. It remains to be seen if the human operator or instrument will learn first.
Two fully automated sample introduction systems are available commercially for use with ICP-MS. One system112 used a proprietary low-pressure anion-exchange column in the determination of total metal concentrations in waters (and other matrices) and Cr speciation. The LOD of 0.007 μg L−1 for CrVI was considerably better than the 0.3 μg L−1 achievable using HPLC-ICP-MS. The other system113 was specific for trace elements in seawater and has been available for longer. Extensive testing over several years has shown it to be suitable for trace element analysis in Southern Ocean samples. The preconcentration factors were 10 for rain water or sea ice, 40 for typical seawater and 70 for remote open ocean seawater (Southern Ocean). Quality control used in-house RMs and the NRCC CRM NASS 6 (seawater). Recoveries for most elements were >98% but those for Ga and Ti were only 70 and 80%, respectively.
The determination of non-metals continues to be of interest. In the ICP-MS/MS determination of total P concentrations in river, lake, rain and seawaters,114 all ions with m/z 31 selected in the first quadrupole were reacted with a 2.5 mL min−1 flow of O2 to convert P+ ions to PO+ ions for detection in the second quadrupole at m/z 47. By shifting the mass of P away from the interfering ions 15N16O+, 14N16O1H+ and 12C18O1H+, the BEC dropped to 0.2 μg L−1 from the 4.7 μg L−1 obtained without the shift. The corresponding LOD was 8 ng L−1. The method was faster, more sensitive and less prone to interference from DOM than the existing US EPA colorimetric method. A new method for the determination of Br and I in saline waters used115 a cation-exchange resin to remove matrix interferences such as those arising from calcium, magnesium, potassium and sodium. The reduced requirement to dilute samples led to improved MDLs. Isobaric interferences (e.g.40Ar39K and 40Ar38Ar1H) were removed by KED in the collision cell. Following matrix removal, procedural blanks were 0.78 and 0.02 μg L−1 for Br and I, respectively, and the corresponding LODs were 0.11 and 0.001 μg L−1. Accuracy was confirmed by quantitative spike recoveries from lake and salt lake waters, oil field water and the NRCC CRM CASS 5 (near shore seawater).
Trace element concentrations of microplastics recovered from surface waters and waters collected from beaches were determined116 by ICP-MS and a mercury analyser based on AAS. The plastic pellets (ca. 0.1 g) were digested using mixtures of HF–HNO3 and HNO3–HCl. The Ba, Ce, Cr, Ni, Pb, Rb, Sr and Zr concentrations were higher in degraded white plastics than in new white plastics and Hg concentrations highest in secondary microplastics produced by weathering of plastic debris. The authors confirmed that the surface degradation of microplastics supported adsorption of metals and so trace elements could accumulate and be transported over long distances.
Researchers are starting to use sp-ICP-MS as a routine tool for investigating the sources and fate of NPs in waters. The distribution of corrosion-related NPs in tap water was studied119 in 50 samples from three separate buildings. Particles containing Fe, Pb and Sn had mean concentrations of 88, 1.2 and 1.8 ng L−1, representing 15, 0.4 and 10% of the total concentrations, respectively. No silver or titanium NPs were detected in any of the samples. In order to analyse Cu-containing NPs successfully, the sample introduction system had to be modified to reduce the interaction of copper complexes with the uptake tubing. Best results were obtained in free aspiration mode as the background signal was reduced from 6000 to 4000 cps. Under these conditions, Cu particles were detected in half of the samples with a mean concentration of 69 (range 15–136) ng L−1. The authors ascribed these values to the fact that although the building was certified to have a low water consumption, the pipes had a normal bore size so water was in contact with the pipes for longer and consequently Cu levels increased. They concluded that metal particles should be studied in drinking water as they may represent a significant fraction of the total element concentrations. Isotopically labelled NP tracers were proposed120 for studying the fate, behaviour and toxicity of NPs in aquatic matrices. Quantum dots isotopically labelled with 111Cd, 77Se and 68ZnS were added to samples of river, estuarine and seawaters. In ultrapure water and dilute HNO3, the LOQs for the analytes in the quantum dots were lower than those for dissolved elements. The LOQs in real samples were between 10- (Zn) and 250-fold (Se) higher due to the natural presence of these elements in the samples. Despite this, the authors considered these limits to be within the range of expected environmental concentrations. They concluded that as LOQs can be estimated from the background elemental concentrations in a given water body, tracers could be added at environmentally relevant concentrations.
The main focus of the isotopic analysis of water samples as reported in the literature remains the determination of stable isotope ratios in seawater. Janssen et al.122 generated Hg0 from a 250 mL sample and subsequently trapped it on a gold bead. The mercury was then thermally desorbed and trapped in 2 mL of a mixed HNO3–BrCl (3 + 1) trapping solution for analysis by CV-MC-ICP-MS. Sample throughput for the determination of δ202Hg in seawater was increased threefold in comparison to a previously used preconcentration and separation method. The 53Cr/52Cr isotope ratio in Pacific Ocean water was measured123 after the conversion of all the Cr present in acidified samples to CrIII. The Cr was then preconcentrated using Mg(OH)2 coprecipitation and separated from the matrix using a series of Biorad AG 1-X8 SAX columns prior to MC-ICP-MS analysis. It was possible to obtain a full water-column Cr-isotope-ratio profile, at a Pacific station, for the first time. The authors considered that slight adjustments to the method would allow redox species-specific isotope ratios to be obtained.
Portable XRF instrumentation for in situ measurements has received a lot of attention this year. By passing 50 mL of water adjusted to pH 4 through a Ti-loaded SAX disk using a plastic syringe in the field, it was possible126 to preconcentrate AsIII, AsV, CrVI, SeIV and SeVI sufficiently to make them detectable by a pXRF instrument. The LODs were 1 μg L−1 for all the analytes. Results for the SCP Science EnviroMAT RMs EP-L (drinking water) and ES-L (ground water) agreed well with the reported values and results for spiked mineral waters agreed with those obtained by ICP-AES. No preconcentration was necessary for the elemental analysis of metal-laden waters from mine tailings.127 A total of 390 samples was analysed for Ca, Cu, Fe, K, Mn, Pb and Zn by pXRFS in the field and by ICP-AES in the laboratory. The two instruments showed near perfect agreement when using the XRF instrument in multiple-stacked-beams acquisition mode; poorer correlation was obtained with single-beam acquisition. This demonstrated the need to calibrate the instrument specifically for water samples. By waterproofing a portable instrument with an X-ray-transparent film, it was possible128 to immerse the instrument fully in water. Exploitation of the full X-ray penetration depth in water resulted in LODs of 21 and 28 ppm for Cu and Pb, respectively.
A comprehensive review134 (199 references) of recent advances in LIBS and XRF analysis of plants concluded that a combination of the two techniques represented a promising approach for routine crop nutrition diagnostics.
Supplementary information on the isotopic composition of commercially available CRMs has been provided. As the IAEA CRM 375 (Chernobyl soil) is no longer available, 129I activities and 129I/131I isotope ratios were determined20 in NIST SRMs 8704 (Buffalo River sediment) and 2710a (Montana soil), and IAEA CRMs SL-1 (lake sediment) and 385 (Irish Sea sediment) using AMS and TIMS. High precision Cd isotope ratios were obtained137 for soil, sediment and manganese module RMs by MC-ICP-MS using both SSB and double-spike mass-bias-correction methods. Separation of Cd from matrix components (>97.8% recovery) using AG MP-1M strong anion-exchange resin eliminated possible spectral interference from Sn.
Two low-temperature fusion methods for the determination of Pu in soil and sediment by SF-ICP-MS were proposed139 for applications in nuclear emergencies. The use of NH4HSO4 (melting point 147 °C) or NH4HF2 (melting point 125 °C) as flux meant a hot plate could be used instead of a furnace and as a result the procedures could be performed in just 30 minutes.
Acid dissolution and extraction methods for specific elements in soil and sediment included a procedure140 for the determination of B. If Rh was used as IS, digestion (30 minutes, 190 °C) with HNO3–HF (1 + 1) in a PTFE-lined stainless-steel bomb followed by dilution in ammonia to mitigate memory effects and avoid corrosion of the ICP-MS sample introduction system gave complete recovery of B from three CRMs. In a similar method,141 for the determination of Br and I, digestion for only 15 minutes at 140 °C was required. The IS in this study was Te. Extraction in high-purity 5% v/v ammonia solution in closed PTFE bombs for 6 h at 190 °C was recommended142 for the determination of I in soils and sediments by ICP-MS. An article143 in Japanese with English abstract described the removal of the REEs Gd, Nd and Sm from soil samples by cation-exchange so that As and Se could be determined free of doubly charged REE-ion interferences.
With the aim of complying with the principles of green analytical chemistry, a MAE method for sediments used144 only dilute (1 M) H2O2 and just 400 μL of aqua regia per 0.2 g of sample. Extraction was performed at 180 °C for 30 minutes. Recoveries from the CRMs LGC 6187 (river sediment) and RTC CRM 015-050 (freshwater sediment) were 80–124% for Ba, Co, Cr, Cu, Fe, Mn, Ni, Pb, V and Zn.
Methods proposed for speciation analysis in soil and sediments by HPLC-ICP-MS reflected an increased awareness of the need to avoid or correct for species interconversion during extraction. An MAE procedure for As used145 0.3 M (NH4)2HPO4 and 50 mM EDTA to achieve baseline separation of AsIII, AsV, MMA and DMA in 12 minutes without species interconversion. The LODs were 0.03–0.11 ng g−1. In a UAE method for the determination of CrVI in sediments, 0.4 M MgCl2 was added146 to 2% NaOH and 3% Na2CO3 to prevent CrIII oxidation. Extracts were spiked with enriched 50CrVI and 53CrIII to investigate possible species interconversion. The method LOD for CrVI was 1.25 μg kg−1 when using ID-HPLC-ICP-MS. Good agreement was obtained between measured (129 ± 6 mg kg−1) and certified (130 ± 2.31 mg kg−1) values for RTC CRM 041 (chromium(VI) in soil). An alkaline solution of 10% v/v NH4OH at 150 °C for 3 h was used147 to extract readily mobilisable I species from soils. Transformation between IO3− and I− was decreased by adding 0.5 mM EDTA before extraction. The LODs were 0.03 and 0.025 μg g−1 for IO3− and I−, respectively. Spike recoveries ranged from 85 to 115%.
A non-chromatographic speciation procedure used148 samples spiked with inorganic Hg and MeHg for selective extraction of MeHg from heavily contaminated soils for determination by CVG-ICP-MS. An UAE in 5% v/v HNO3 maximised recovery of the organic species with minimal co-extraction of inorganic forms. Any inorganic Hg in the extract was precipitated as HgS by addition of 0.35 M (NH4)2S prior to CVG using 1% (m/v) NaBH4. Results for RMs IRMM ERM CC580 (estuarine sediment) and Sigma-Aldrich SQC 1238 (methylmercury in sediment) were in agreement with certified values. Selective determination of TBT in sediment in the presence of MBT, DBT and inorganic Sn was achieved149 by use of 0.1 M EDTA and 0.5% w/v DPC as masking agents to prevent ethylation of the non-target species. EthylTBT was then sorbed onto a SPME fibre for TD and MIP-AES detection.
A protocol for preconcentration of Hg from sediment digests and water samples for isotopic analysis by MC-ICP-MS involved122 Hg reduction, gold trap amalgamation, rapid (40 minute) TD and chemical trapping in just 2 mL of an oxidising 40% (3:1 HNO3 + BrCl) aqueous solution. The method tripled sample throughput relative to that of traditional procedures and allowed isotopic analysis to be performed in samples containing lower concentrations of Hg without compromising accuracy or precision.
The need for improved (and ultimately harmonised) analytical methods for extraction of nanomaterials from environmental samples was addressed in a study150 that compared four extractants over a range of pH values and concentrations for the isolation of natural nanomaterials from topsoil for characterisation by various analytical techniques, including ICP-MS. Extraction with 10 nM Na4P2O7 at pH 9–10 was 2–12 times more effective than those with other extractants (NaOH, Na2CO3 and Na2C2O4).
Interest in methods for evaluating the availability or mobility of metals in soils and sediments remains strong. The Mehlich-1 extraction procedure, widely used to predict the phytoavailability of nutrients in soil, was optimised151 using Box-Behnken-type response-surface methodology. Optimal extraction of Cu, Cd, Cr, Mn, Ni and Zn occurred when 2 g samples were stirred in 43 mL extractant for 14 minutes. A free-ion-activity model based on the Cd, Cu, Ni, Pb and Zn concentrations in soil extracts predicted152 uptake into spinach. The robustness of two standard methods153 to estimate mobility of metals in soil, ISO 14870:2001 (extraction of trace elements by buffered DTPA solution) and French standard NF X 31-120:2003 (extraction by means of ammonium acetate in the presence of EDTA), was evaluated using a Youden and Steiner factorial design. Both methods were insensitive to minor changes (±10% of the prescribed value) in shaking rate, shaking time and solid:liquid ratio. A previously reported seven-step sequential-extraction procedure was compared154 with the BCR procedure for estimating the bioavailabilities of As, B, Cd, Co, Cr, Cu, Fe, Mn, Ni, Pb and Zn to plants collected near boron mines in Turkey. Although the two procedures yielded similar results, the authors claimed the more elaborate procedure was superior because it could fractionate elements associated with manganese oxides, amorphous iron minerals and crystalline iron minerals. These claims need to be verified as it is long established155 that sequential extraction procedures are rarely mineral-phase specific.
The use of DGT for sampling PTEs in soil and sediment porewaters for analysis by LA-ICP-MS remains popular. The binding capacity of Chelex-100 (100 μm bead diameter) was superior156 to that of the resin SPR-IDA (10 μm, supplied as 10% w/v aqueous suspension) for Fe and Mn but its larger bead size limited the spatial resolution that could be obtained. The pragmatic solution adopted involved grinding of the Chelex resin in a ball mill and then supporting it on a gel similar to that typically used in the SPR-IDA approach. Deployment157 of arrays of miniaturised DGT probes (864 individual samplers housed in 72 arrays) allowed a detailed study to be conducted of the field-scale heterogeneity of As, Fe, P and S in a paddy field in Nanjing, China. Different combinations of gels were used to collect both cationic and anionic species. An article158 in Chinese with English abstract claimed a mixed CeO2/ZrO2 binding-medium provided better performance for the measurement of As species in sediments and waters than either of the individual components used alone.
Several MAE methods applicable to plants have been published. Researchers in India159 reported that it was possible to extract Cr species from various types of leaf powder using 0.1 M EDTA, 1% tetrabutyl ammonium bromide and “a little HF” in a domestic microwave oven for analysis by ICP-AES. Workers in Brazil160 compared water-bath, digestion block, MAE under medium pressure and MAE under high pressure. Unsurprisingly, the high pressure MAE gave the best recoveries (85–113%) for As, Cd, Cu, Fe, Ni, Pb, Se and Zn from BCR CRM 670 (aquatic plant). Pressure-assisted and microwave-assisted enzymatic hydrolysis procedures were optimised161 for Se speciation in plant-based foods by HPLC-ICP-MS. The procedures were rapid, taking only 7 and 12 minutes, respectively. The LODs were 0.014–0.599 μg g−1. To address the lack of suitable sample-pretreatment procedures for measurement of δ11B in plants by MC-ICP-MS, a three step approach was developed162 that involved dry ashing, dissolution of the residue in 0.5 M HNO3, removal of interferents by cation-exchange chromatography and microsublimation of B(OH)3. The method had a low procedural blank (0.70 ± 0.09 ng) with good overall B recovery (97 ± 11%) and, importantly, gave δ11B values for BCR CRM 679 (white cabbage) and NIST SRM 1547 (peach leaves) consistent with those measured in previous studies.
Analyte(s) | Sample matrix | Method | Reagent(s) | Detector | LOD (μg L−1, unless otherwise stated) | RMs or other validation | Reference |
---|---|---|---|---|---|---|---|
Silver NPs | Soil, water | CPE | Sodium thiosulfate, Triton X-114 | TXRFS | <1 | Comparison with sp-ICP-MS and ICP-AES | 374 |
Gold NPs, silver NPs, | Soil, water | CPE | Sodium thiosulfate, Triton X-114 | TXRFS | 0.3 for Ag, 0.2 for Au | Spike recovery | 361 |
As, Ca, Cd, Cu, Fe, K, Mg, Mn, Na, P, Zn | Forage grass | UAE | Deep eutectic solvents based on citric acid, malic acid and xylitol | ICP-AES, ICP-MS | Not reported | NIST SRMs 1573a (tomato leaves) and 1570 (spinach leaves) | 375 |
AuIII (discriminated from gold NPs) | Soil, water | SAEME | Cetyltrimethylammonium bromide, 1,2-dichloroethane | TXRFS | 0.05 | Spike recovery | 376 |
Cd | Tea, water | UAEME | Trichloroethane | FAAS | 0.17 | NIST SRMs 1573a (tomato leaves) | 377 |
Cd | Lettuce, potato, rice, water | DLLME | Ionic liquid based on 1-chloroethyl-3-methylimidazolium chloride functionalized with 8-hydroxyquinoline | FAAS | 0.55 | Spike recovery | 378 |
Cd | Liquid and solid samples | DLLME | 2-[(4-Phenylpiperazine-5-thioxo-4,5-dihydro-1,3,4-oxadiazole-2-yl)methyl]-5-methyl-4-[2-(1H-indole-3-yl)ethyl]-2,4-dihydro-3H-1, 2,4-triazole-3-one, chloroform, methanol | FAAS | 0.69 | NWRI TMDW (drinking water), RTC SA-C sandy soil C | 379 |
Cd | Bean, cabbage, corn flour, water | UAEME | 1-(2-Thiazolylazo)-p-cresol | FAAS | 0.60 | NIST SRMs 1573a (tomato leaves), NIES 10d (rice flour) | 380 |
Cd, Hg, Pb | Plants, soil | DLLME | Deep eutectic solvent based on 1-decyl-3-methylimidazolium chloride and 1-undecanol | ETAAS | 0.01–0.03 μg kg−1 | BMEMC GBW 08303 (polluted farming soil) | 381 |
Cd, Pb | Chilli pepper, tea, tobacco | CPE | 2-[(6-Morpholin-4-ylpyridin-3-yl)amino]-N′-(4-oxo-3-phenyl-1,3 thiazolidin-2-ylidene) acetohydrazide, Triton X-114 | FAAS | 0.6 for Cd, 1.2 for Pb | RTC SA-C sandy soil C | 382 |
Co, Cr, Cu, Ni, Pb | Soil | DLLME | 2-(2-Thiazolylazo)-p-cresol, trichloroethane, methanol | EDXRFS | 0.1–0.5 mg kg−1 | NIST SRM 2586 (trace elements in soil containing lead from paint), spike recovery | 383 |
Co, Ni, Zn | Lentils, nuts, rice, vegetables | UACPE | 7-D-Glucopyronosyl-3,5,6,8-tetrahydroxy-1-methyl-9,10-dioxoanthracene-2-carboxylic acid, nonylphenoxy poly(ethyleneoxy) ethanol, cetyltrimethylammonium bromide | FAAS | 0.6 for Co, 0.6 for Ni, 0.5 for Zn (all μg kg−1) | NIST SRMs 1570a (spinach leaves) and 15481 (typical diet) | 384 |
Cu | Vegetables | LLME | Deep eutectic solvent based on benzyl triphenyl phosphonium bromide and ethylene glycol, 1,5-diphenyl carbazone chelating agent | FAAS | 0.13 | NIST SRM 1573a (tomato leaves) | 385 |
Pb | Water | CSDFME | Methanol, carbon disulfide | ETAAS | 0.03 | NIST SRM 1515 (apple leaves) | 386 |
V | Potato, spinach, tomato, water | HME | Decanoic acid solvent, 2-(5-bromo-2-pyridylazo)-5-diethy-laminophenol complexing agent | ETAAS | 0.0075 | NIST SRM 1515 (apple leaves), NRCC SLRS 4 (riverine water) | 373 |
Analyte(s) | Matrix | Substrate | Substrate coating | Detector | LOD (μg L−1) | RMs or other validation | Reference |
---|---|---|---|---|---|---|---|
Cd | Edible plants | Magnetic Fe3O4@chitosan composite | SQT-FAAS | 0.2 | NIST SRM 1573a (tomato leaves) | 387 | |
Cd | Corn, lentils, liver, rice, tea, water, wheat | Silver NPs | FAAS | 1.1 | Spike recovery | 388 | |
Cd, Cu, Pb | Water | Amberlite XAD-4 | Mucor pusillus | HR-CS-FAAS | 62 for Cd, 74 for Cu, 235 for Pb | NIST SRM 1573a (tomato leaves) | 389 |
Co, Ni | Beef, chocolate, fruit, soil, vegetables, water | Amberlite XAD-4 | Geobacillus stearothermophilus | ICP-AES | 0.022 for Co, 0.025 for Ni | NWRI NWTM-15 (fortified water), NRCC DORM 2 (dogfish muscle) | 390 |
Cr species | Water | Poly-3-hydroxybutyrate-2-(dodecylthiocarbonothioylthio)-2-methylpropionate triester | ETAAS | 0.006 | BMEMC GBW 07605 (tea) | 391 | |
In, Ni | Sediment, soil | Bentonite clay and sonication | SS-HR-CS-ETAAS | 10 for In, 260 for Ni | IAEA 433 (marine sediment); NIST SRMs 8704 (river sediment), 27091 (san Joaquin soil) and 2711a (Montana soil) | 392 | |
Pb | Sediment | Pb-imprinted superparamagnetic mesoporous silica | ETAAS | 0.25 | IGGE GSD 3 (stream sediment), GSD 4 (pond sediment) | 393 | |
Te | Soil | Magnetic cobalt particles | SQT-FAAS | 15.4 | Spike recovery | 394 |
A FAAS method for the determination of Co in soil incorporated165 PVG and a novel batch gas–liquid separator. The LOD of 8.7 μg L−1 was an improvement of over an order of magnitude when compared to that achievable using conventional nebulisation. Spike recoveries were 98.9–107%.
A portable instrument was developed168 for the determination of organomercury in sediment. A PDMS/Carboxen SPME fibre accumulated analyte species from the gas phase, which were then transferred to a TD unit and swept into a digitally-controlled, rotating-field (10 kHz) helium microplasma. A small spectrometer with a CCD recorded the emission spectrum and transferred the data to the USB port of a notebook computer for processing. The instrument was first used to screen for any volatile organomercury compounds emanating from the sediments. Samples were then subjected to MAE. Total Hg, inorganic Hg and MeHg were determined in aliquots of the extract by addition of 5% NaBH4, 3% SnCl2 and 36.5% NaCl, respectively, to transfer the desired species into the headspace for collection on the SPME fibre. The LODs were 0.2 μg kg−1 for total and inorganic Hg, and 0.7 μg kg−1 for MeHg.
Other developments in on-line liquid-sample introduction to ICP-MS have been reported. The ultimate goal of a FFF-ICP-MS method172 for the determination of particulate C in charcoal-spiked soil samples was to monitor C, P and metals in natural and engineered particulate matter in environmental systems. The loss of sensitivity in FI systems typically caused by diffusion of the injected sample aliquot into the carrier liquid was avoided173 in a segmented-flow FI-ICP-MS method by introducing a 50 μL sample plug in the middle of a 1 mL plug of air. This improved the LOD 2 to 3-fold and sample throughput 5-fold in comparison to values achievable by conventional FI-ICP-MS. This enabled the successful determination of Fe, Mn and Zn in a sample containing just 60 μg of plant protein in a total volume of 150 μL.
The importance of determining the bioaccessible PTE fraction in environmental samples led to the development of stable isotope ID-ICP-MS methods for determining Cd174 and Cr175 in marine sediments. The samples were equilibrated with either a 111Cd- or a 53Cr-enriched 1 M HCl spike using ultrasonic agitation and the results validated by comparison with Cd or Cr concentrations extractable in the first three steps of the BCR sequential extraction procedure. In another study,176 a 110Cd spike was equilibrated with soil suspended in three different electrolytes (0.01 M CaCl2, 1 M NH4NO3, 1 M HN4Cl). All three electrolytes gave similar estimations of the labile Cd pool.
The sensitivity of a ferric-ion-assisted PVG method102 for the determination of Bi in sediment and water samples was 30-fold better than that achievable using direct solution nebulisation. The LOD of 0.3 ng L−1 represented a significant improvement over those obtained using, for example, HG-AFS, HG-ICP-MS, PVG-AFS or non-ferric-ion-assisted PVG-ICP-MS.
An ETV-ICP-MS method for the direct determination of Hg in soil was calibrated177 using NIST SRM 2709 (San Joaquim soil). The reproducibility was <21% (n = 3) and the LOQ 3.1 ng g−1 for a sample mass of 0.5–5.0 mg. Results for NIST SRM 1645 (river sediment) and NRCC CRM MESS 3 (marine sediment) were within 13% of certified values.
Direct application of LA-ICP-MS to samples of suspended sediment collected on filters is challenging because the sample is not homogeneously distributed and is of variable thickness. The complete removal of the fine particulate material from the filter for pelletisation is impractical so, to overcome these difficulties, sediment-loaded filter samples were milled178 intact, pressed into “filter pellets” and analysed. Calibration pellets were created by milling together equal masses of CRMs and blank filters. Quantification of 17 elements allowed the various catchments contributing sediment to the Ruvu River system in Tanzania to be delineated.
Work on calibration strategies for the analysis of plants by LA-ICP-MS included a comparison179 of 12C, 13C, 28Si and 31P as ISs for mapping the elemental distributions of Ag, Cu and Mn in soybean leaves cultivated in the presence or absence of silver NPs. The use of 13C was preferred as it provided best precision and the most homogeneous images. Other workers180 also used a 13C IS, in combination with spiked-agarose-gel in-house calibrants, for the analysis of food samples. Recoveries for the analysis of NIST SRM 1573a (tomato leaves) were 84–122% for a suite of 19 analytes. The inclusion of pulverised leaves of Eremanthus erytropappus as a matrix-matched QC sample was recommended181 when analysing plants belonging to the Atlantic and Cerrado Forest biomes of Brazil.
Advances in LA-ICP-MS methods to study the behaviour of NPs in plants included a procedure designed182 to overcome difficulties in imaging silicon NPs caused by the high Si background. The plant Ocimum basilicum was exposed to NPs with a yttrium core and a silicon coating and the response for 89Y quantified. A LA-sp-ICP-MS method183 previously developed for the in situ characterisation of NPs in biomaterials was applied to gold NPs taken up from hydroponic solution by sunflower roots. By optimising parameters such as laser fluence, beam diameter and dwell time, it was possible to determine not only the distribution of Au in root cross sections but also the number of NPs present and their size.
The ability of a current-generation quadrupole ICP-MS instrument to determine Pb isotope ratios in urban soil was thoroughly assessed184 through comparison with analysis by MC-ICP-MS. The optimised parameters included: sample dilution to match the Pb concentration with that of a solution of NIST SRM 981 (common lead isotopic standard); dead time correction factor; quadrupole dwell time; and number of scans per sample. Both internal (Tl) and external (NIST SRM 981) mass bias corrections were applied. Although not able to match the precision of MC-ICP-MS, the protocol could provide results that were considered fit for purpose without having to extract the Pb from the soil digest.
New ICP-MS/MS methods are being increasingly reported as instrumentation becomes more widely available. Procedures of note included the determination of 90Sr in soil,185 Pu isotope ratios in environmental samples containing high levels of U,186226Ra in rock, soil and water187 and, in Chinese with an English abstract, As, Cd, Cr, Hg, Ni, Pb, Sb and Sn in activated clay.188 The advantages of coupling chromatography with ICP-MS/MS are beginning to be explored. For example, a HPLC-ICP-MS/MS procedure189 for determining Cr speciation in alkaline extracts of soil gave LODs of 0.08 and 0.09 μg L−1 for CrIII and CrIV, respectively. Reliable CrVI spike recovery could be obtained from soils with low OM content (2.8%) but the presence of 18% OM led to losses due to reduction of CrVI to CrIII.
Although one of the advantages frequently claimed for LIBS is that it requires no sample preparation, several studies explored methods of sample pretreatment for LIBS analysis in order to improve analytical performance. Donaldson and Yan191 approached this from a purely theoretical perspective by using a 2D COMSOL model to simulate the effects of LA on soil samples with different physical characteristics. Popov et al.192 studied the effects of soil moisture (amongst other parameters) on emission intensity for Fe and Mn, and concluded that samples should be dried as well as pelletised prior to LIBS analysis to improve accuracy. In contrast, Khumaeni et al.193 recommended adding a small amount of water to soil samples and ‘painting’ a thin layer onto a metal substrate for the determination of C. An assessment194 of the feasibility of determining N in soil using portable LIBS established that, whereas pelletisation might be challenging on a remote robotic rover (for example, on the surface of Mars), simply milling to a particle diameter of <100 μm gave results that correlated well with those obtained by microanalysis using a commercial CHN analyser. Carvalho et al.195 improved precision in the determination of Al, Ca, Fe, Mg, Si and Ti in soil by converting samples into glass beads using a lithium borate fusion method. Yi et al.196 used what they rather grandly termed a “solid–liquid–solid transformation” (extraction with 0.1 M HCl then evaporation of the extract onto a glass slide) to determine Cd and Pb in soil. The LODs in the dried extracts were, unsurprisingly, superior to those achievable with pressed soil pellets.
Various methods for improving sensitivity in LIBS analysis of soils and plants have been reported. A secondary (tuneable) laser is used selectively in LIBS-LIF analysis to re-excite a transition of the analyte element in the ablation plume. A method for Pb in soils197 used a homemade CW-DL to achieved a two-fold increase in intensity of the Pb I 405.78 nm transition. In a procedure for Sb in soils,198 spectral interference from Si was eliminated through selective enhancement of the Sb I 287.79 nm line. An alternative approach to improving sensitivity involved199 application of a magnetic field to confine the ablation plume and increase emission intensities. The LOD for Cr was improved from 20 to 8 mg kg−1. Application of 80 nm diameter silver NPs to the surface of lettuce leaves significantly enhanced200 LIBS peak intensities and so allowed the determination of both Cd and the organophosphate insecticide chlorpyrifos (based on P emission at four wavelengths).
The limitations of univariate calibration have prompted continued interest, in particular in China, in the exploration of chemometric methods for processing LIBS spectral data. Soils were analysed for: Cr, Cu, Ni and Pb using PCR and Lasso;201 K using CNNs;202 and Cd using PLSR and LS-SVM.203 In the last study, analysis under an argon atmosphere was considered preferable to analysis in air. Plants were analysed for: B, Ca, Fe, K, Mg and Zn in Panax notoginseng using PLSR, LS-SVM and Lasso;204 Cd in tobacco roots using PLSR and SVM;205 Cu in tobacco leaves using PLSR and ELM;206 and Cd in lettuce using PLSR.207
High resolution multielement LIBS maps were produced208 across cross-sections of the soil–rhizosphere–root interface, using switchgrass (Panicum virgatum) grown in sandy loam Alfisol as a test sample. The 17 elements imaged successfully at a resolution of ca. 100 μm included: analytes characteristic of organic matter (C, H) and soil minerals (Al, O, Si); macronutrients (K, Mg, P); and micronutrients (Fe, Mn, Zn). The ability of LIBS to map light elements was exploited209 in a study of Li uptake in Podocarpus macrophyllus leaves.
The development of classification models based on LIBS data has continued. In this approach, spectral information indicative of the parameter to be sensed (often arising from multiple species in the sample) is selected and subjected to chemometric algorithms. For example, hypothesising that imbalance in Ca, K and Mg concentrations was associated with soybean’s susceptibility to green stem and foliar retention syndrome, Ranulfi et al.210 created an early diagnostic tool using representative emission lines for these elements that discriminated sick from healthy leaves. Ponce et al.211 applied PCA to 38 atomic and molecular emission lines to detect the onset of citrus-greening disease in asymptomatic fruit trees, thereby allowing the trees to be removed before the infection spread. Chemometric procedures for the automated selection of optimal spectral peaks were used212 in the construction of PLS-DA models for classification of Chinese tea leaves. Over 99.5% of 600 samples of six varieties of tea were classified correctly. Differentiation of willow, pine and poplar was achieved213 by analysis of bark using a LIBS variant in which fs laser filamentation allowed a beam of almost constant energy to be projected over a distance of several metres for remote analysis of rough surfaces.
In data fusion models, outputs from complementary analytical techniques are combined to generate proximal information. Of particular interest is the combination of data that can be generated in the field. Bricklemyer et al.214 evaluated LIBS and VIS-NIR DRS to estimate C species in intact soil cores. Inorganic C was best predicted by LIBS, SOC by VIS-NIR DRS and total C by integration of LIBS and NIR data. De Olivena et al.215 applied the same two techniques to estimate the nutritional status of Bracharia forage. When incorporated into a single model, the VIS-NIR DRS results helped compensate for sample matrix variability and so improved accuracy for the LIBS determination of Ca, Fe, K, Mg and Mn. Xu et al.216 assessed LIBS, VIS-NIR DRS, MIR spectroscopy and pXRFS both individually and in various combinations for prediction of six key properties (SOM, total N, available N, available P, available K and pH) that affect soil fertility. The predictive capability decreased in the order MIR > VIS-NIR > LIBS > pXRFS. Interestingly, combining the outputs of the individual VIS-NIR, MIR and LIBS models using Bayesian-model averaging gave more accurate predictions than data fusion.
Methods for the analysis of plants or soils using EDXRFS have been developed or improved. A procedure219 for simultaneous determination of As, Hg, Sb and Se in powdered plant leaves was proposed as a labour-saving alternative to techniques based on HG or VG. The LODs were 2.3, 1.6, 20 and 3.6 mg kg−1 for As, Hg, Sb and Se, respectively. Recoveries were 89.9–97.2% of concentrations determined by HG-AAS. With the goal of widening the applicability of the technique, workers at the JRC in Geel developed220 an EDXRF method that could be applied to a wide range of organic and inorganic matrices using a single calibration curve for each element. The curves were constructed using CRMs and RMs covering a variety of matrices and analyte concentrations. An algorithm based on full-spectrum LS multivariate calibration was proposed221 as an alternative to the fundamental parameter method for the determination of Cu, Fe, Ni, Ti and Zn in soil. The feasibility of analysing seed coats, seedlings and leaves of Phaseolus vulgaris (common bean) exposed to CuO, Fe3O4 and ZnO NPs was demonstrated222 in a scoping study with the aim of assessing the potential of EDXRFS for investigating uptake of trace elements from nanoparticle-based fertilisers. A key goal in this research area is to determine the extent to which the NPs are taken up intact and the extent to which they dissolve in the soil or rhizosphere thereby releasing ions into solution for subsequent root uptake.
Advances in WDXRF methodology for soils and plants included a rapid method223 for determination of Si developed using Equisetum arvense (horsetail) and Urtica dioica (nettle). Samples were calcined at 700 °C and then converted into fused beads for analysis. The linear range was 6–55% SiO2. There were no significant differences between measured and certified values for the NACIS CRM NCS DC73349 (trace elements in bush branches and leaves). A procedure for the rapid screening for F in contaminated soil had224 an LOD of 52 mg kg−1 and a linear range extending up to 5%. Measured concentrations for USGS SDC-1 (mica schist) and NIST SRM 694 (phosphate rock) were within 3% of the certified values (600 and 32000 mg kg−1 F, respectively) but recoveries for 15 soil samples collected in the vicinity of a HF spill were more variable.
The ability of benchtop μXRFS instruments to produce detailed spatial images of trace element distributions in fresh or living plants was highlighted in interesting case studies presented by Rodrigues et al.225 and Capobianco et al.226 In the latter study, PCA was used to determine correlations between the distributions of essential elements and As in tobacco seedlings exposed to arsenate.
A challenge for synchrotron-based μXRF analysis of living plants is radiation damage and dehydration caused by prolonged exposure of the sample to X-rays. Improved detector efficiency allowed Blamey et al.227 to reduce dwell time. This made possible the first microscopic-scale quantification of both spatial and temporal changes in the concentrations of multiple elements in the same area Vigna unguiculate (cowpea) leaves. No tissue damage was observed. The analysis of cross-sections of Pinus radiate (Monterey pine) revealed228 a cyclic seasonal change in the tree’s uptake of Si.
Factors affecting the accuracy of soil and sediment analysis by pXRFS were the focus of several studies. The decrease in analyte peak intensity that occurs with increasing moisture content229–231 and the effect of sample thickness230 were investigated. Three closely related articles examined the effects of moisture,232 organic matter233 and packaging234 on the determination of Al2O3, Fe2O3, P2O5, SiO2, and TiO2.
Approaches previously developed for soil analysis were adapted for the pXRFS analysis of 74 compost samples from the USA and Canada with the aim of using the elemental data to develop methods of proximal analysis. Comparison with established laboratory-based methods yielded R2 values of 0.8 for salinity,235 0.63 for pH235 and 0.90 for CEC.236 Copper and Zn concentrations gave the best prediction of CEC. In a study237 of soil from the Great Hungarian Plain, Rb concentrations were better predictors for soil clay content and salinity than K concentrations, possibly since Rb is less affected by plant metabolism. A data fusion approach238 combined FT-NIR spectroscopy data and pXRFS data to predict nutrient status in olive leaves. Whereas predictions for concentrations of Ca, K and Mn were quantitative and those for N and P semi-quantitative, models for B and Mg were less satisfactory and levels of Zn could not be predicted at all. Since both techniques are field portable, this approach shows great promise for on-site determination of nutrient levels in crops, thereby allowing more targeted fertiliser application to be made.
A procedure242 for the determination of 135Cs/137Cs by TIMS used AMP-PAN resin followed by anion- and cation-exchange steps to remove matrix interferents, particularly Rb which inhibits ionisation. The precision was <10% for samples containing as little as 10 fg 137Cs. Results for analysis of IAEA CRMs 372 (grass) and 330 (spinach) were similar to values reported in the literature for other, Chernobyl-derived, CRMs.
An annual bibliographic review243 (23 references) provided an overview of papers published in 2017 in the fields of geochemistry, analytical chemistry, palaeoclimate research and environmental sciences that contained analytical data for geological RMs used for calibration or QC. The characterisation of new RMs was also covered. All the publications listed in this review and their analytical data can be found in the GeoReM database.
Several new certified RMs for bulk analysis are now available. Thirteen Chinese laboratories244 participated in an interlaboratory exercise to certify three Mo ores (GMo-1 to GMo-3) and one Mo concentrate (GMo-4). A variety of analytical techniques was used in certifying the mass fractions of up to 26 elements and oxides. The certified values and uncertainties for Mo in the three ores and concentrate were 0.066 ± 0.003, 0.15 ± 0.01, 0.54 ± 0.02 and 50.08 ± 0.14 wt%. Their bulk compositions were determined after high pressure digestion and conventional PGE separation, while their PGE distributions were assessed by LA-ICP-MS. The RMs were then used to test the accuracy of different procedures for chemical separation of base metal sulfide grains and digestion of single grains.
Several new RMs for isotope ratio determinations were developed and characterised. Vogl et al.245 described the certification of ERM-EB400, a bronze material, and ERM-AE142, a Pb solution, for Pb isotope ratios. Both materials were designed so that the Pb isotope ratios fell within the naturally occurring range and so provide analysts in many scientific fields, including geochemists, with an independent means of validating their analytical procedures and acting as QC materials. The Chinese Academy of Geological Sciences in collaboration with other institutes prepared246 a basaltic RM (CAGS-Basalt) and three single-metal solution RMs (CAGS-Cu, CAGS-Fe and CAGS-Zn) to act as secondary RMs for Cu, Fe and Zn isotope ratio determinations. A pyrrhotite sample, YP136, collected from northern Finland was proposed247 as a new candidate RM for in situ S isotope determinations by SIMS. Internal growth and other zoning was excluded by examination of thin sections by polarised microscopy, back-scattered-electron image analysis and WDS mapping. More than 100 grains were analysed by SIMS amounting to 318 spot measurements that gave a repeatability of 0.3‰ (2 s) for 34S/32S. The δ34S value determined by IRMS was 1.5 ± 0.1‰ (2SD, n = 11).
There is ongoing interest in the determination of additional compositional information for existing RMs. A study by Kirchenbaur et al.248 determined In and Sn mass fractions in 16 basaltic, ultramafic and sedimentary geological RMs by ID-MC-ICP-MS. Optimisation of the digestion and ion-exchange separation conditions provided high yields, low procedural blanks and low analytical uncertainties (<3% 2u). Mass fractions of Br, Cl, F and I reported249 for eight USGS, GSJ and NIST powdered-rock RMs were in agreement with previously published data. In addition, new F mass fractions were measured in five silicate glass RMs (NIST SRMs 610 and 612 and USGS RMs BHVO-2G, BCR-2G and BIR-1G). The F mass fractions were determined by SHRIMP analysis, while Br, Cl and I were measured by the noble-gas method. Five in-house biotite RMs used for O isotope measurements at the University of Lausanne, together with the RM NBS 30 (biotite), were investigated250 for their H2O, Cl and F contents by SIMS in negative ion mode. In addition, the homogeneity of all six materials was assessed. There was no detectable dependency on crystal orientation at the level of homogeneity of the RMs so the in situ determination of contents in randomly oriented grains in thin sections was possible. Accuracy was 15 and 3% (1SD) for Cl and F contents, respectively and was estimated to be 3–4% (1SE) for H2O measurements. Valuable recommendations for the analysis of biotite unknowns were provided.
Work to obtain new isotopic information for existing geological RMs provided much valuable information. The focus of research by Brett et al.251 was the determination of Tl mass fractions and stable Tl isotope ratios in 16 geological RMs with Tl contents spanning three orders of magnitude. They reported the first ε205Tl (relative to NIST SRM 997) data for many of the rock and mineral RMs analysed and the first Tl mass fractions for USGS RM COQ-1 (carbonatite), CRPG RMs ISH-G and MDO-G (trachytes) and all the mineral RMs involved in the study. The ε205TlSRM997 results for the 16 RMs were in the range −3.4 to +1.8. All the RMs except G-2 were deemed to be suitable as matrix-matched Tl isotope RMs as long as a test portion of at least 100 mg was taken. Prompted by the lack of suitable RMs for the determination of N mass fractions and δ15N in low-N (200 μg g−1) silicate rocks, Feng et al.252 selected USGS RMs BCR-2 and BHVO-2 (basalts) for an interlaboratory comparison. A newly developed method based on high-temperature sealed-tube combustion coupled to continuous-flow IRMS gave N-isotope data more positive than published EA-IRMS data for the same materials. The authors suggested that the EA-IRMS method underestimated the N mass fraction due to incomplete release of N and high blanks so making it unsuitable for the determination of δ15N in silicates. As the primary NIST standard Zn solution JMC 3-0749L is nearly exhausted, the NIST SRM 683 (pure Zn metal nugget) was identified253 as having potential to be a new international RM for Zn isotope measurements. The Zn isotope composition and homogeneity of NIST SRM 683 were assessed by analysing five Zn metal nuggets at three different laboratories by MC-ICP-MS using a double-spike protocol. The NIST SRM 683 was homogeneous within an analytical precision of 0.04‰ and had a δ66Zn value of 0.12 ± 0.04‰ (n = 295) at the 95% confidence level relative to the JMC 3-0749L Zn reference standard (JMC-Lyon). Based on these findings, and the fact that it is much more abundant than previous primary RMs, NIST SRM 683 was proposed as the future “zero-point” RM for Zn isotope measurements. Motivated by a renewed interest in K isotope geochemistry, Xu et al.254 investigated 23 RMs for their δ41K compositions. The samples (sedimentary, igneous and metamorphic rocks) had δ41K values of −0.562 to −0.253‰ as measured by MC-ICP-MS after cation-exchange chromatography. A study of the Sm–Nd isotopic compositions of 12 mineral RMs (apatite, monazite, titanites and eudialyte) reported255143Nd/144Nd and 147Sm/144Nd values acquired over four years by LA-MC-ICP-MS. External reproducibilities of <0.06‰ (2SD) for 143Nd/144Nd and 2.5‰ (2SD) for 147Sm/144Nd demonstrated the potential of these materials as candidate RMs for in situ Sm–Nd isotopic determinations.
Several contributions focused on the evaluation and improvement of digestion techniques. A rapid acid digestion for the simultaneous determination of B and I in soils and sediments involved141 HNO3 + HF with ammonia dilution. Complete recoveries of Br and I were obtained from IGGE RMs GSD-2 (sediment) and GSS-24 (soil) by digestion for 15 minutes in a PTFE-lined stainless-steel bomb at 140 °C. The use of ammonia to dilute the resultant slurry had the advantages of stabilising the Br and I signals and eliminating the memory effects often observed in their measurement by ICP-MS. A MAD method employing NH4HF2 and HNO3 was evaluated258 using 21 silicate rock RMs of felsic to ultramafic composition and measuring their trace element content by ICP-MS. The entire dissolution procedure occurred in a closed vessel system and took up to 4 h. Satisfactory recoveries for 41 elements were obtained from most matrices; important exceptions being Hf and Zr in USGS RMs G-2 (granite) and GSP-2 (granodiorite), even though a complete digestion was achieved for four other felsic RMs. The difference in Hf and Zr recoveries for specific RMs was attributed to the presence of resistant minerals such as zircon. The importance of carrying out a comprehensive characterisation of the mineral phases of a material to optimise the digestion protocol was emphasised. In a novel approach,259 refractory ore samples were decomposed in a mixture of Na2O2/Na2CO3 in a corundum crucible by adding a piece of wet filter paper and heating in a microwave oven at 600 W for 15 minutes. The energy released by the reaction of water with the Na2O2 was key to achieving complete dissolution. The precision for Cr, Fe, Mo, Ti and W concentrations determined by ICP-AES were better than 6% (RSD) and the results for all elements except Cr were in good agreement with those obtained from a traditional fusion method.
For the determination of Au in a wide variety of mineral matrices by MIP-AES, Helmeczi et al.260 compared different open-vessel acid digestion techniques and investigated the use of different solvents for preconcentration. Whereas acid treatment with HNO3–HCl (5 + 1) gave an average Au recovery of 97% after 35 minutes, focused IR digestions delivered higher recoveries (95–104%) in a shorter time (15 minutes). Solvent extraction with 2-octanone was preferred over the use of MIBK or 2-ethylhexanol because of the greater sensitivity which resulted in accurate Au determinations by MIP-AES except for samples with high Fe contents. A low-cost method261 based on the use of N,N-diethyl-N′-benzoylthiourea as a selective chelating agent and Amberlite XAD-16 as solid sorbent was developed for the selective preconcentration of Au from ore samples. A preconcentration factor of 6.7 was achieved and Au concentrations as low as 0.015 μg mL−1 detected by FAAS. To validate the proposed method, a copper ore (Cyprus Mining Company, Northern Cyprus) and CCRMP CRM MA-1b (gold ore) were analysed, yielding results in agreement with given values.
Chemical abrasion combines high temperature annealing with a partial dissolution step and is commonly used in zircon geochronology to minimise the loss of radiogenic Pb from parts of a crystal affected by radiation damage. This loss would otherwise bias the 206Pb/238U age determined. Widmann et al.263 presented an experimental approach to quantify how CA affects the crystal structure and the chemical composition of zircon and its U–Pb age. This is an important contribution since up until now different laboratories have adopted different reaction conditions with no detailed understanding on how the CA temperature and duration affected the radiation-damaged zones. Experiments were performed under different temperature–time conditions using fragments of the Plešovice zircon and changes in trace element concentrations, lattice order and U–Pb age were monitored. The most reliable U–Pb results were achieved when Plešovice zircon was treated by CA at 210 °C for 12 h. It was also demonstrated that the Plešovice zircon can no longer be considered to be homogenous given the level of precision now achievable by LA-ID-TIMS dating.
An area of major activity is U–Pb zircon geochronology by LA-ICP-MS. Mukherjee et al.264 studied the precision and accuracy of U–Pb zircon geochronology when using small spot sizes as well as the extent to which short ablation times affect downhole fractionation. Six reference zircons were systematically analysed using four different spot sizes (7 to 20 μm) and fluence combinations (3 to 6 J cm−2). Each sample was ablated for 30 s and ablation signals of different duration were processed. The most accurate ages were obtained by excluding the initial 2 s of unstable ablation and then integrating only the next 10 to 15 s of the ablation signal (corresponding to 50 to 75 laser pulses), thereby restricting the extent of downhole fractionation and time-resolved Pb/U variations between different zircons. This methodology yielded concordant U–Pb ages with an accuracy and precision better than 1.4% when using LA-SF-ICP-MS. A study of detrital zircons demonstrated265 that the complete history of a polyphase crystal may not be obtained if only cores or only rim overgrowths were ablated so both should be analysed when possible. It was recommended that the single-analysis concordia age should be used to present the U–Pb data rather than single isotope ratio ages, as the concordia age provided the best precision through geological time and the precision varied less with age. Pullen et al.266 developed a methodology for optimising the precision, accuracy, efficiency and spatial resolution of U–Pb and Pb–Pb ages when dating detrital zircons by LA-SC-ICP-MS. Such studies typically involve the analysis of many hundreds of crystals. The approach corrected for the nonlinearity of the detector as well as element- and mass-dependent fractionation and instrumental drift by using a suite of three zircon RMs with known isotope ratios determined by ID-TIMS but with differing Pb and U concentrations. Age offsets were typically better than ±2.0% for individual measurements of small volumes (10 μm depth × 20 μm diameter) of material. Although the authors claimed a high sample throughput, their experiments were performed on RMs only and no indication of the actual throughput of unknown detrital zircons was presented. To improve the efficiency of preparing zircons for dating, Isozaki et al.267 developed an automatic zircon separator that picked out 100 μm-sized zircon grains from a heavy mineral fraction prepared by conventional separation procedures. The separator targeted mineral grains using optical recognition, mechanically captured individual grains with micro-tweezers and placed and aligned the grains on a receiving tray with registered coordinates. Automatic zircon separation was combined with direct 207Pb/206Pb dating of unpolished zircons by LA-ICP-MS prior to high-resolution U–Pb dating by LA-MC-ICP-MS of mounted and polished grains.
There is considerable interest in U–Pb dating of additional U-bearing accessory minerals. An ultrafast U–Pb dating method268 by LA-ICP-MS was applied to zircon, apatite, rutile and titanite RMs using repetition rates of >50 Hz. Ablation was performed in a fast-washout 2-volume cell fitted with a rapid aerosol-introduction-system that was capable of resolving individual LA pulses at fast sampling rates. Analysis time for each laser spot (18–47 μm diameter) was about 8 s, which included about 5 s for ablation. With this approach, spot analyses of >1000 grains could be performed in less than 3 h. Accuracy and precision were <1% (2SD) for pre-Cenozoic RMs and <2% for younger RMs and therefore comparable to those obtained using conventional LA-ICP-MS protocols. Luo et al.269 investigated the effect of the addition of oxygen, nitrogen and water vapour either before or after the ablation cell on the accuracy of U–Pb measurements of zircon, monazite, titanite and xenotime by LA-ICP-MS when using the non-matrix-matched RM NIST SRM 610 for calibration. The addition of small amounts of water vapour (ca. 0.004 mL min−1) before the ablation cell significantly suppressed matrix effects by about a factor of 10 but no such effect was observed when oxygen or nitrogen was added. Comparable results were obtained with 193 nm excimer laser and 213 nm Nd:YAG LA systems and were consistent with observations made over many years that wet plasma conditions reduce matrix effects. The U–Pb dating of baddeleyite, a key mineral in the geochronology of mafic rocks, requires matrix-matched RMs for calibration when using ns LA-ICP-MS. A comparison270 of U–Pb data generated by ns-LA-ICP-MS and fs-LA-ICP-MS in spot and line scan modes came to the conclusion that elemental fractionation occurred with both LA systems when using a zircon RM for calibration. Although line scans were not affected by downhole fractionation, they still yielded discordant ages. Spot analysis and matrix-matched calibration were recommended to obtain high-precision concordant U–Pb ages in baddeleyite. A U–Pb geochronological study271 of hydrothermal hematite employed LA-ICP-MS, SHRIMP and ID-TIMS analyses and an in situ grain-microsampling technique to assess the suitability of hematite for dating ore formation within iron-oxide-rich mineral systems. The results indicated that hematite could be a useful U–Pb mineral geochronometer if careful sample petrography, screening and data interpretation were applied.
In a new approach272 to U–Pb dating of carbonates by LA-ICP-MS, polished rock fragments were mapped for key elements and Pb and U isotopes. One pixel in the map corresponded to one time slice of the time-resolved signal. From these 2D elemental and isotopic maps, pixels corresponding to likely homogeneous age domains could be isolated by applying suitable selection criteria and pooled into pseudo-analyses. This generated the largest possible spread of the data points on isochron diagrams. Depending on the U concentration, 238U/204Pb ratio and age of the sample, this approach could yield a precision of ±1% or better for analyses employing quadrupole instruments. In a non-matrix-matched U–Pb-dating-method273 for calcite using LA-MC-ICP-MS, 2D elemental maps were constructed to identify areas with elevated 238U concentrations and high 206Pb/208Pb ratios for U–Pb isotopic analysis. To minimise downhole fractionation during the U–Pb measurements, the aspect ratio of the craters was kept low (spot size 100 μm, depth 50 μm). Calibration with NIST SRM 612 (synthetic silicate glass) yielded an age for the carbonate RM WC-1 that agreed within the uncertainty of its published age.
In an improved measurement protocol274 for U–Th dating, the effect of plasma instability was reduced by measuring low abundance isotopes on the axial EM of a MC-ICP-MS instrument operated in peak-jumping mode and with short integration times. The ionisation and transmission efficiencies were ca. 3% for both Th and U. This, together with significantly reduced procedural blanks, enabled analytical precisions of ±1.4 yr (2SD) to be achieved for corals as young as ca. 10 years old using a sample mass of only ca. 40 mg. A processing protocol275 for MC-ICP-MS data written in MATLAB was applicable to studies of 230Th–U geochronology. This protocol consisted of two interactive programmes, the first designed for graphical presentation of the raw data and outlier filtering, and the second to enable data reduction, age calculations and data storage.
A new approach was proposed276 to overcome the drawbacks of conventional K–Ar dating by NAA and current unspiked K–Ar dating methods. The new method involved laser fusion on multiple microaliquots of a sample and the construction of an inverse isochron. Almost complete extraction of Ar from the samples was achieved and accurate and precise K–Ar ages obtained for RMs Fish Canyon sanidine and B4M muscovite. This approach could be employed in a modern 40Ar/39Ar laboratory without any special equipment and provided an alternative to methods requiring access to a nuclear reactor. A new analytical system (KArMars) was developed277 to investigate the feasibility of in situ K–Ar dating on Mars. The system was based on UV LA with LIBS for K measurement and quadrupole MS for Ar determinations. Calibration of the LIBS and quadrupole MS systems and improved quantification of the ablated mass were investigated through the development of RMs whose chemistry and 40Ar yields were determined independently. Using multiple ablations and an isochron approach, the KArMars system provided ages with an accuracy and precision of ca. 10% for a wide range of rock compositions.
Using an established gentle stepwise-crushing technique, Xiao et al.278 determined the 40Ar/39Ar geochronology and geochemical composition of gases released from fluid inclusions in ore minerals such as wolframite and cassiterite. A combination of quadrupole MS, microscopic observations and Raman spectroscopy was used to reconstruct the hydrothermal activities recorded in mineral-hosted fluid inclusions. Gases released during each crushing stage changed progressively from large vapour-rich secondary-fluid-inclusions (SFIs) through large aqueous SFIs to small primary-fluid-inclusions, each of which had distinct 40Ar/39Ar compositions and corresponding ages.
There is much ongoing interest in elemental imaging by LIBS. A review283 (151 references) on recent advances and applications of LIBS-based elemental imaging for laboratory applications described the more common experimental configurations and various data processing methodologies. The wide variety of LIBS mapping applications included paleoclimate studies, mineralogy and ore formation. A complex hydrothermal ore sample containing five different mineral phases (galena, sphalerite, chalcopyrite, quartz and ankerite) was employed284 to evaluate the use of megapixel LIBS for the geochemical characterisation of minerals. By using megapixel LIBS with a new methodology for data treatment of multiphase materials, it was possible to demonstrate that the technique was capable of detecting and imaging La and Y in carbonates and substitution elements in various mineral phases at the μg g−1 level. For example, Cd could be detected in sphalerite, Ag, Bi and Sb in galena, Al and Be in quartz and Sn in chalcopyrite. Rifai et al.285 demonstrated the capabilities of a new benchtop LIBS platform developed to meet the needs of the mining industry for fast in situ measurements of the chemical composition of drill cores and thereby to provide the foundation for rapid core logging. Several elements in geological samples and drill cores were mapped quickly and simultaneously and their distributions visualised on the same image using new software. Another study focussed286 on the elemental mapping and geochemical characterisation of hydrocarbon-bearing shales by LIBS. Five samples of Marcellus shale were analysed using an 81 × 81 grid pattern covering an area of 8 × 8 mm to construct 2D elemental maps. The ability of LIBS to detect most of the elements of interest, including C and H, together with the possibility of making in situ measurements using a downhole LIBS sensor currently under development, could potentially offer a distinct advantage over current techniques used in shale gas exploration.
Various applications of handheld LIBS included its use287 to discriminate between the elemental composition of a fragment of the Agoudal meteorite, a sample suspected to be a meteorite and industrial pig iron. Qualitative data for the major elements Co, Fe and Ni and the trace elements Ga and Ir were sufficient to differentiate a genuine meteorite sample from ordinary terrestrial rocks or man-made objects. It was concluded that handheld LIBS was a promising technique for fast, reliable, non-destructive, in-field chemical analyses to identify rocks that are likely to be of extraterrestrial origin. Comparison of quantitative data obtained by handheld, portable and benchtop LIBS systems in the analysis of a weathered limestone fragment from a stone monument indicated288 that the relative differences between all three techniques were <25% for Al, Fe, K, Mg, Na and Si but around 50% for C and Ca. Although the benchtop and portable systems had a double-pulse setting that improved the sensitivity, the main elemental composition of the two distinct layers (a superficial black crust and limestone rock) could be rapidly identified and quantified with the handheld LIBS instrument.
Data processing methods were discussed289 in a paper on improving the accuracy of iron ore analysis by LIBS. To overcome challenges posed by nonlinear self-absorption and matrix effects, a hybrid model of sparse partial least squares (SPLS) and least-squares support vector machine (LS-SVM) was proposed for the determination of Al2O3, CaO, Fe, MgO and SiO2 in iron ores. The hybrid model provided better data than either the SPLS or LS-SVM model used alone. A method of automatic spectral peak identification with linear discriminant analysis (ASPI-LDA) was developed290 to improve the capability of standoff LIBS to categorise rock types. Rather than identifying rocks manually one-by-one, the new procedure allowed automatic and rapid identification of rock types to be made so ASPI-LDA combined with a compact spectrometer was considered to be a promising technique for remote detection and direct in situ analysis. Dong et al.291 demonstrated the importance of the molecular spectra of CN and C2 for the quantitative LIBS determination of the C content of coal. A combination of carbon atomic and molecular emissions with both PLS regression and support vector regression correction improved the measurement accuracy.
Much of a review292 (212 references) on new trends of LIBS in cultural heritage and archaeology was applicable to geological studies. Materials of interest included metals, pigments, pottery, glass, rocks and gemstones. The combination of LIBS with other analytical techniques was also discussed.
The use of ICP-TOF-MS for elemental and isotopic analyses has particular advantages when combined with LA sampling. Gundlach-Graham et al.296 used LA-ICP-TOF-MS with a low dispersion ablation cell to generate large format (4 × 2 mm), high dynamic range (1–106 μg g−1) and quantitative multi-elemental 2D compositional maps of a mineralogically complex fault rock from Italy. Data were acquired in a few hours. It was possible to assign mineral phases directly from LA-ICP-TOF-MS data, with good agreement between the elemental mass fractions determined by LA-ICP-TOF-MS imaging with 100% normalisation quantification and those determined employing conventional LA-ICP-MS spot analysis with 29Si as the IS. The elemental images provided unique insights into the genesis of the fault system. Direct isotopic analysis of individual μm-sized U-containing reference particles by LA-ICP-TOF-MS exploited52 the very high temporal resolution of the technique and gave quasi-simultaneous measurement of all nuclides. Internal and external precisions of 0.2–0.4% could be achieved for 235U/238U measurements when both isotopes had the same abundance. For materials with more natural U isotopic signatures, the precision was 4–5%. Although 234U/238U and 236U/238U were measured successfully, the precision was limited when the abundance of the minor isotope was very low (in the 10−5 range). The potential of ICP-TOF-MS in combination with collision/reaction cell technology was evaluated297 using a range of sample introduction schemes including high- and low-dispersion LA and microdroplet generation. Hydrogen was used as the reaction gas and He as the collision gas. The sensitivity for intermediate- and high-m/z elements was improved by a factor of 1.5 to 2 with small flow rates of H2 and He (or a mixture of both gases). Use of H2 as the reaction gas made it possible to suppress background species such as Ar+ and Ar2+ selectively. The LODs for many of the elements contained in NIST SRM 610 (trace elements in glass) were improved by a factor of two to four.
The use of solid-sampling electrothermal-vaporisation ICP-MS for the determination of As, Sb, Se and Te in coal overcame299 the difficulties of digesting this type of material. Operational parameters evaluated included the furnace temperature programme, mass of Ir modifier, oxygen flow rate in the pyrolysis step and carrier and bypass gas flow rates. Whereas it was possible to use aqueous standard solutions to calibrate As, Sb and Te determinations, coal CRMs were required to calibrate the determination of Se. No statistical difference was observed between results obtained by SS-ETV-ICP-MS and those obtained by ICP-MS after sample digestion. Data for NIST coal SRMs agreed with the certified values. The SS-ETV-ICP-MS LOQs of 0.03, 0.01, 0.03 and 0.006 μg g−1 for As, Sb, Se and Te, respectively, were lower than those obtained using decomposition methods.
A novel approach300 was adopted for in situ trace element determinations when analysing melt inclusions by LA-ICP-MS. Instead of ablating an entire melt inclusion along with the host mineral, melt inclusions were exposed by polishing the sample surface so that the melt inclusion could be ablated without the host material. This reduced the uncertainty associated with measured concentrations because no deconvolution of the mixed ablation signal was necessary. In contrast, Yang et al.301 developed a new quantification strategy for deconvoluting LA-ICP-MS signals from ablated melt or fluid inclusions from those from the host material. Varying proportions of the target and host material were ablated and the resulting mixtures defined a linear trend for which the end points could be determined if the concentration of at least one element was known independently for both phases. Results provided by the two linear-regression deconvolution methods proposed in this study were within ±15% of compositions derived from traditional data quantification. One advantage of this new approach was that it enabled accurate quantification of features smaller than the laser spot size to be made. In the in situ quantification of Cl and S in melt inclusions, glasses and minerals by LA-ICP-MS, a correction procedure302 accounted for signals enhanced by mobilisation of Cl and S contamination from the walls of the ablation cell and transfer tubing. For accurate results down to a few hundred μg g−1 for both elements to be achieved, it was essential that the ICP-MS instrument had relatively low backgrounds for Cl and S and that instrument-specific corrections be established using samples with known Cl and S contents.
Branson et al.303 developed a new data-analysis-package for processing LA-ICP-MS data. The emphasis of this Python-based open-source package (LAtools) was on ensuring that the reduction of trace element data from complex, heterogeneous samples was fully reproducible while at the same time operating with efficacy similar to that of existing software. It was recommended that a series of analytical parameters additional to the LA-ICP-MS data (e.g. laser repetition rate, spot size, gas flow rate) should be included in any publication in order to increase the transparency and reliability of the LA-ICP-MS data.
Analyte | Matrix | Sample treatment | Technique | Analysis and figures of merit | Ref. |
---|---|---|---|---|---|
B | Rock RMs, volcanic rocks with low B contents | Study to assess cold HCl leaching for 1, 3, 5, 7 and 9 h in 2 M and 6 M HCl prior to digestion in mannitol solution, H2O2 and HF and anion-exchange chromatography on AGMP-1 resin. Total procedural blanks <10 ng with short duration 6 M HCl leaches | MC-ICP-MS | SSB with NIST SRM 951 (boric acid) as the bracketing standard. External reproducibilities generally <0.6‰ (2SD). New recommended B isotopic compositions (δ11B) for RMs IAEA B-5 (basalt) and B-6 (obsidian) and USGS AGV-2 (andesite) | 395 |
B | Carbonate RMs | Carbonate powder dissolved in HCl with mannitol. Chemical separation in a two-step procedure involving AG 50W-X12 cation-exchange resin and AG1-X4 anion-exchange resin | MC-ICP-MS | Isotopic measurements in low-resolution mode. Reproducibility of δ11B values ± 0.4‰ (2SD) using SSB correction improved to <±0.2‰ by a mass discrimination correction of 11B/10B by monitoring 7Li/6Li | 396 |
B | Biogenic carbonates | Powdered RMs pressed into pellets and recrystallised in an oven under CO2 atmosphere. Solid CaCO3 samples mounted on carbon tape without embedding in resin | LA-MC-ICP-MS | MC-ICP-MS instrument equipped with 1013Ω amplifiers. Sample introduction using Jet Sample and X-skimmer cones, a platinum injector, and N2 added to sample gas to increase sensitivity. Long-term accuracy better than 0.22‰ achieved by subtraction of baseline interferences caused by matrix-specific Ca, C and O ions | 397 |
B | Biogenic carbonates | Coral and calcite fragments, and NIST glasses mounted in epoxy resin and polished. Slice of a coral polished and mounted onto a glass slide. Foraminifera cleaned ultrasonically and mounted on double-sided tape. Powdered carbonate RMs pressed into pellets | LA-MC-ICP-MS | Three approaches tested to correct for matrix interferences: (1) matrix-matched standards; (2) relationship between δ11B inaccuracy and 11B/43Ca, 11B/40ArCa4+ or 11B/Ca interference using three RMs with known δ11B values and varying B/Ca ratios; (3) direct characterisation of interferences. Accuracy (within 0.4‰ of solution values) and external reproducibility (±0.5‰, 2 SD) were best when applying approach 2 | 398 |
Ca | Ca carbonates (stalagmite, coral) | Samples dissolved in 10% HNO3, centrifuged and supernatant diluted with HNO3 for measurement without any matrix separation procedure for samples with Sr/Ca <0.1 | MC-ICP-MS | SSB with a high purity Ca standard solution to correct for mass bias; NIST SRM 987 measured to assess Sr interferences. Background interference on 42Ca minimised by tuning the sweep gas and torch position. Precision was 0.08‰ (2SD, n = 32) for an in-house RM and accuracy verified by interlaboratory comparison | 399 |
Ce | Silicate rock RMs | Rock RMs dissolved in HNO3–HF–HCl. Three columns to separate the REEs from matrix elements and then isolate Ce4+ from the other REEs | TIMS | A new triple spike (136Ce–138Ce–140Ce) method was developed for δ142Ce determinations. Long-term reproducibility of new Ce RM (CeLMV) for 138Ce/142Ce ratio was 0.02257053 ± 0.00000061 (27 ppm, 2SD, n = 48) | 400 |
Cr, Ti | Geological RMs, meteorites | Sample powders digested in HF–HNO3 in Parr bombs. Chemical separation and purification of Cr and Ti in three steps: Fe removal on AG1-X8 anion-exchange resin followed by sequential Ti and Cr separations, both using AG50W-X8 cation-exchange resin. Recoveries typically 90–100% with total blanks of 3–5 ng Cr and 2–3 ng Ti | MC-ICP-MS, TIMS | Cr isotope measurements by TIMS by SSB method using in-house Cr RM with exponential law instrumental mass bias correction. Ti isotopes by MC-ICP-MS in high resolution mode; SSB with NIST SRM 3162a (Ti solution). Instrumental mass bias corrected relative to 49Ti/47Ti following the exponential law | 401 |
Cs | RMs, marine sediments | Ashed samples leached with concentrated HNO3. Simplified chemical separation involving initial Cs sorption using AMP-PAN resin and two-stage ion-exchange chromatography for further Cs purification. Chemical recovery of Cs was >80% | TIMS | 133Cs signals collected on FCs L1 and L2 to depress the effects of scattered 133Cs. Measurement precision for 135Cs/137Cs better than 10% for samples containing as little as 10 fg 137Cs | 242 |
Hf, Lu, Nd, Sm | Silicate rock RMs | Samples decomposed either by fusion with LiBO2 flux or dissolution with HF. Sequential separation of Hf and lanthanides from matrix elements on a single column filled with cation-exchange AG50W-X8 resin. Nd, Lu and Sm further isolated from the other REE on a second column using Ln-Spec resin. Overall chemical yield was >95%. Blanks were about 40 pg Hf, 20 pg Lu, <400 pg Nd and <100 pg Sm | MC-ICP-MS, TIMS | Determinations of Hf and Lu isotope ratios by MC-ICP-MS with 174Lu–179Hf spike and Nd and Sm isotope ratios by TIMS with 149Sm–150Nd spike. Accuracy assessed using USGS RMs AGV-2 (andesite), BHVO-2 (basalt), G-2 (granite) and W-2 (diabase) | 402 |
Hg | Igneous rock and soil RMs | RMs digested with aqua regia in a water bath at 95 °C for 2 h | MC-ICP-MS | CF CVG system modified to enhance Hg signal sensitivity. NIST SRM 997 (Tl standard solution) introduced as IS for mass bias correction. LOD of 5 ng g−1 for Hg concentrations. Hg isotopic compositions of four USGS igneous rock RMs (BCR-2, BHVO-2, GSP-2, and GSR-2) were reported for the first time | 403 |
K | Geological RMs | Sample digestion by successive additions of concentrated HF–HNO3, HCl–HNO3 and HNO3. Chemical separation of K from other matrix elements on AG50W-X8 cation-exchange resin. K solutions dried down and purification process repeated | HR-MC-ICP-MS | Reduced rf power used to suppress Ar hydrides. High resolution mode with desolvation nebuliser system, with SSB for instrumental mass bias correction gave precisions better than 0.06‰ (95% confidence interval) | 404 |
K | Geological RMs | Samples dissolved in HF–HNO3 using Parr high-pressure digestion vessels. Two-step ion-exchange chromatography to purify K using: (1) AG50-X8 cation-exchange resin; and (2) AG50-X8 cation-exchange resin. Procedure blank 0.26 μg; recovery ca. 100% | MC-ICP-MS | MC-ICP-MS measurements under cold and dry plasma conditions. Long-term (20 months) reproducibility for 41K/39K 0.11‰ (2SD, n = 890). Range of USGS geological RMs analysed. Recommended K isotope data reported relative to NIST SRM 3141a (K solution) | 405 |
Li | Marine biogenic carbonates | Removal of organic matter by leaching before complete dissolution in dilute HCl. Chemical purification on cationic columns containing AG50-X12 resin was performed twice | MC-ICP-MS | MC-ICP-MS with desolvating system for high sensitivity measurement; SSB used to correct for instrumental mass bias. GSJ carbonate RMs JCt-1 and JCp-1 used to assess accuracy of method; precision was <0.5‰ (2SD) | 406 |
Mg | Geological RMs | Three different Mg purification schemes developed for silicate rocks, high-Ca carbonates and carbonatites, and high-Mn samples using AG50W-X8 resin in all cases. Recovery for all purification schemes >99.1% with blanks <10 ng | MC-ICP-MS | MC-ICP-MS in wet plasma mode and low resolution settings. SSB applied for instrumental mass bias correction. Long-term reproducibility and accuracy <0.05‰ for δ25Mg and 0.06‰ (2SD) for δ26Mg. New Mg data for 16 USGS, GSJ and NRCCRM RMs presented | 407 |
Nd | Basaltic RMs | New separation scheme consisting of four extraction chromatographic stages carried out on several small columns filled with three different resins, used in successive tandem configurations, without an intervening evaporation step. Mean blank 30 pg (SD = 13) | TIMS | 143Nd/144Nd and 142Nd/144Nd determined by TIMS in static MC mode; Re double-filament assembly. Mass fractionation corrected by applying the empirical exponential law and 146Nd/144Nd = 0.7219 as the reference ratio | 408 |
Pa, Ra, Th, U | Carbonates | Samples initially dissolved in HNO3 and mixed 236U–233U–229Th–233Pa–228Ra spike added. Two approaches to the chemical separation of Pa, Ra, Th and U from same sample aliquot were tested. The one based on a sequence of ion-exchange columns using AG 1-X8 resin yielded better results. Recoveries were 50–60% Th, ca. 67% Pa and ca. 53% Ra | MC-ICP-MS | Correction factors for mass fractionation and ion-counter-to-FC amplification determined using a SSB approach and different RMs. Reproducibilities were 1.2% RSD for 231Pa/235U and 3.4% RSD for 226Ra/230Th | 409 |
Pb | Mn–Fe-rich nodules | Ultrafine powders dried at 105 °C for 1 h and pressed to pellets without adding binder | LA-MC-ICP-MS | Two methods of mass bias correction assessed: Tl normalisation and SSB method. Precisions of <0.036% for 207,208Pb/206Pb and <0.066% for 206,207,208Pb/204Pb (2RSD) | 410 |
Rb, Sr | Geological RMs | After dissolution in HF, Rb and Sr separated from matrix elements and each other by a combination of extraction chromatography and cation-exchange using Sr-Spec and AG50W8 resins. Two aliquots prepared and an enriched 87Rb–86Sr spike added to one | MC-ICP-MS | Rb and Sr concentrations determined by ID and Zr-based mass bias correction applied. 87Sr/86Sr ratio measured on the unspiked aliquot and raw data corrected for mass fractionation using an exponential law and normalising ratio 86Sr/88Sr = 0.1194 | 411 |
Re, Os, S | Sulfide minerals | 185Re and 190Os spikes added to sample powders and digested in sealed Carius tubes with inverse aqua regia. Os separated by CCl4 solvent extraction before two-stage tandem column procedure involving AG50W-X8 cation and AG1-X8 anion-exchange resins for the separation and purification of Re and S. Recoveries were 99.8% for S and 99.7% for Re. Blanks were 2–5 pg for Re, 0.2–0.4 pg for Os and 30–50 ng for S | ICP-MS, MC-ICP-MS, TIMS | Re concentrations determined by ICP-MS, Os isotope ratios by NTIMS using high-purity Pt filaments, and S isotopic compositions by MC-ICP-MS with SSB approach for mass bias correction. δ34S values for IAEA RMs S-2 and S-3 (silver sulfide) and IAPSO standard seawater were consistent with certified values | 412 |
Sn | Chondrites | Double spike of 117Sn–122Sn added to sample prior to digestion with HF–HNO3, followed by refluxing with aqua regia and take up in HCl. Chemical separation of Sn performed using TRU resin | MC-ICP-MS | Ion beams collected simultaneously in a single cycle using FCs. Results reported relative to Sn_IPGP, an in-house Sn isotope standard. Replicates of chondrite samples Jbilet Winselwan, Allende and SAH 97096 yielded repeatabilities of ±0.071‰, ±0.110‰ and ±0.040‰, respectively for δ122Sn/118Sn | 413 |
Te | Fe–Mn nodules and Jasperiod RMs | A 125Te–128Te double spike and 77Se single spike were added to powdered samples prior to digestion in HF–HCl–HNO3 at 100 °C for >12 h. Separation of Te (together with Se) from the sample matrix using thiol cotton fibre. Total procedural blanks were <19 pg for Te with recoveries of 99 ± 7% | MC-ICP-MS | Se and Te concentrations determined by ICP-MS and Te isotope ratios by MC-ICP-MS using double-spike method to correct for mass bias. Isotope ratios reported as δ130Te/125Te relative to in-house standard solution (Kanto Chemical). Analytical uncertainties (2SD) for δ130Te/125Te under dry and wet plasma conditions were 0.027‰ and 0.035‰, respectively | 414 |
Zr | Geological RMs | Samples combined with 91Zr–96Zr double-spike prior to dissolution and column chemistry. Comparison of two dissolution methods (Teflon bombs and Parr bombs) both involving HF and HNO3. Separation of Zr via two-step ion-exchange chromatography on separate AG1-X8 and DGA columns. For USGS RM BHVO-2 (basalt) the Zr yield was ca. 70% | MC-ICP-MS | Mass discrimination corrected using double-spike technique. Zr isotope data reported relative as the ‰ deviation of 94Zr/90Zr from the IPGP Zr standard. Precision of Zr ratios in silicate rocks was ±0.044‰ (2SD) | 415 |
Several reviews on isotope ratio measurements by ICP-MS were noteworthy. Yang et al.304 (176 references) summarised models available to correct for isotopic fractionation in MC-ICP-MS measurements. Models for mass-dependent fractionation were considered together with the latest findings on the causes of mass-independent fractionation. It would appear that this is a more frequent phenomenon than previously thought and the implications of this for several of the models commonly used for correcting for mass bias was outlined. A flow chart for the selection of an appropriate mass bias correction model was provided to assist the reader in implementing a suitable measurement strategy to obtain accurate isotope ratios. Emphasis was placed on the importance of accounting for all possible sources of uncertainty so that a meaningful comparison could be made of isotope ratio results obtained by different research groups. On a related theme, another review305 (53 references) focused on practical considerations in the use of the double-spike technique to correct for instrumental mass bias. The advantages of this technique over other methods such as sample-calibrator bracketing were emphasised. Of particular advantage was the ability to eliminate mass-dependent fractionation during sample processing and measurement if the double spike was added beforehand. The detailed description of how to design and calibrate a suitable double-spike and optimise analytical strategies was aimed at researchers new to the subject. A review306 (87 references) of current research and instrumental developments in the application of LA-ICP-MS to the isotope ratio analysis of hard and soft biological tissues is of direct relevance to geoanalysis. Limitations to obtaining accurate and precise isotope ratios were highlighted, an overview of recent applications provided and an outlook on potential future developments given.
Research into specific MC-ICP-MS instrument configurations included a study307 of four different sample and skimmer cone combinations and their effect on the accuracy and precision of Mg isotope measurements in wet-plasma mode. The performance of the Jet sample cone combined with an H skimmer cone was regarded as outstanding for its good accuracy and best precision and was therefore recommended for this particular application. In the context of U-series disequilibria measurements by MC-ICP-MS, Scott et al.308 evaluated the use of retardation energy filters combined with ion counting detectors. A systematic bias for 234U/238U and 230Th/232Th measurements occurred when a retarding potential quadrupole (RPQ) lens was not used. Each RPQ combined two charged lenses (decelerator and suppressor) that could be tuned to achieve the best abundance sensitivity while at the same time maximising ion transmission. The use of RPQs in the ion counting system was always recommended when measuring isotope ratios of the order of ≤10−5 in order to minimise the background. The RPQ configuration made it possible to measure 210Pb in geological samples with low concentrations of common Pb (e.g. carbonates and silica sinter) as well as 226Ra concentrations in rock RMs. New 226Ra, Th, 230Th/232Th and U data were presented for 10 USGS geological RMs and AThO, a rhyolite from Iceland. To overcome interferences from scattered ions and peak tailing of the intense 40Ar+ and 40Ca+ ion beams when making high-precision stable Ca isotope measurements by MC-ICP-MS, Li et al.309 designed a so-called “dummy bucket” to trap 40Ar+ and 40Ca+. The dummy bucket consisted of a metal box with the same external dimensions as a normal FC and was installed at the low mass side of a grounded baffle plate of the lowest-mass mechanically adjustable FC. The 40Ar+ and 40Ca+ ion beams were assigned to the dummy bucket and the charges released via the attached grounded baffle plate in front of the bucket. Long-term external precisions based on repeated measurements of standard solutions and rock RMs were better than ±0.07‰ (2SD) for δ44Ca/42Ca and ±0.10‰ (2SD) for δ43Ca/42Ca, respectively. Other possible interferences could be removed by using efficient chemical separation or be resolved at a high operating resolution of 2500.
In a new sample preparation technique,311 specimens were mounted using an alloy of ca. 52% tin and ca. 48% bismuth rather than epoxy resin which degases readily under ultra-high vacuum conditions. The use of the tin alloy mounts together with an automatic liquid-nitrogen refilling-system significantly improved the vacuum conditions by about one order of magnitude. Compared to the indium mounts commonly used for ultra-high vacuum measurements, tin alloy mounts were easier to polish to give the relief of <2 μm essential for high-precision isotope analysis by SIMS. The spot-to-spot reproducibility of 0.15‰ (1SD) for O2 isotope ratios was comparable with that obtained using routine epoxy mounts. This novel preparation method was ideal for measuring water content in olivine or other anhydrous minerals.
Matrix effects remain a key issue for SIMS analyses. Schicchitano et al.312 investigated matrix bias related to Mg/Fe variations when measuring oxygen isotope ratios in olivines by SHRIMP analysis. The observed matrix bias was +0.7‰ to −2‰ for olivines with forsterite contents of 74–100 mol%. The correction scheme developed, based on a quadratic function of the minor fayalite content, was applied to chemically zoned olivine crystals from a partly serpentinised dunite to identify the source of the serpentinising fluids. The matrix-dependent bias that occurs when determining Li mass fractions in silicate glasses by SIMS was quantified313 by analysing a range of silicate glass RMs. A clear correlation of the relative ion yield (RIY) for Li with SiO2 mass fractions was evident; in silica-rich matrices the RIY for Li was about 40% higher than in matrices with low silica contents. In addition to their own measurements, the researchers evaluated published Li mass fraction data by comparing results obtained by SIMS with those obtained by other techniques such as ICP-MS and LA-ICP-MS. The differences were especially striking for basaltic and ultramafic samples for which published SIMS data differed by up to 40% from data derived by other techniques. Updated preferred values for several MPI-DING and USGS RMs were proposed together with valuable recommendations for the quantification of Li mass fractions by SIMS.
Other geological applications of SIMS included a study314 to determine abundances of the short-lived radionuclide 10Be (t1/2 = 1.4 Ma) in meteoritic samples. It was necessary to determine the relative sensitivities of B and Be so that 9Be/11B ratios could be measured and then initial 10Be/9Be ratios estimated. Five synthetic melilitic glasses were doped with trace amounts of B and Be to give varying Be/B ratios and were analysed together with NIST SRM 610 (glass) by nanoSIMS and LA-ICP-MS. The Be/B relative sensitivities of the melilitic glasses were identical to that of the NIST 610 glass, indicating that matrix effects were insignificant for Be–B measurements. These findings were important for determination of accurate initial abundances of 10Be to provide information on the astrophysical conditions in the Early Solar System. A novel protocol315 for in situ N-abundance and isotope analyses of basaltic glasses by high-mass-resolution SIMS was capable of resolving significant isobaric interferences. Twelve (C-)N-bearing synthetic basaltic glasses with N concentrations between <1 and 18443 ± 966 μg g−1 were prepared as RMs for the study. By targeting the AlN−, CN−, NO− and SiN− secondary molecular ions, N abundances were determined down to the μg g−1 level in both carbon-bearing and carbon-free glasses. Analytical precision and reproducibilities of 11‰ and 10–17‰ (2SD) were achieved for 15NO−/14NO− measurements in glass RMs containing ≥100 μg g−1 N. This new analytical protocol could help to improve our understanding of the N characteristics of the deep Earth and other planetary interiors as it enabled, for the first time, the study of the concentration and isotopic composition of N trapped within μm-sized silicate phases such as melt inclusions in terrestrial and extraterrestrial samples. Jones et al.316 developed a methodology for extracting accurate 3D isotopic information from pyrite (FeS2) minerals in thin sections using SIMS-based ion imaging. The protocol allowed the spatial variability of δ34S across individual grain surfaces to be determined and enabled the ‘true’ size of grains to be estimated from the apparent size by assessing rates of radius change with depth. This technique could be applied to SIMS-based elemental and isotopic ratio measurements of a range of minerals in thin sections.
The presence of nitrate can affect the accuracy of oxygen isotope ratio measurements in carbonates by IRMS because isobaric interferences are created during the phosphoric acid digestion step at 72 °C. Hu et al.320 used a low-temperature (25 °C) phosphoric acid digestion method to decrease the production of NO2 during CO2 extraction from nitrate-rich samples such as speleothems and evaporites. Subsequent measurements of δ13C and δ18O by CF IRMS yielded accuracy and precisions for nitrate-doped carbonate RMs that were indistinguishable from those of the undoped RMs.
Pulsed-direct-current GD-TOF-MS was used321 to quantify concentrations of 24 major and trace elements in ore samples directly. Benefits of this technique included low spectral interferences and LODs and a minimal amount of sample pretreatment as the measurements were performed on pressed powders. For quantification, RSFs were determined using two RMs (NIST SRM 2782 (industrial sludge) and a gabbro, SGD-1A, from the Institute of Geochemistry in Irkutsk, Russia) and Fe as IS. The method was validated by analysing an ore sample previously characterised by different techniques. Any differences between GD-TOF-MS data and those obtained by ICP-AES were attributed to shortcomings in the microwave digestion procedure and spectral interferences affecting the ICP-AES measurements.
Synchrotron-based XANES was used324 to measure Fe2+ and Fe3+ directly on three tourmaline samples (dravite, povondraite and oxy-schorl) to complement the chemical characterisation by EPMA. Better knowledge of the Fe oxidation states was required to avoid the considerable errors in structural formulae and classification that occurred when it was assumed that all Fe existed as either Fe2+ or Fe3+. In an evaluation325 of bulk and microfocused synchrotron-XANES for investigating V speciation in marine sediments, the S/N ratios of the XANES spectra were too poor to allow accurate quantitative analysis. Scanning XRF microscopy, used to image elemental distributions in the sediment sample with the aim of identifying host phases of vanadium, was limited in its ability to distinguish between Ti and V because of the close proximity of their fluorescence emission lines. Cautious interpretations were required as well as rigorous QC measures.
Two regression models for XRFS – ordinary linear regression (OLR) and uncertainty-weighted linear regression (UWLR) – were compared in a study326 of 59 geochemical RMs and a procedural blank. The UWLR model was preferred for routine calibrations of XRFS analytical procedures because it generally gave lower uncertainties or narrower confidence intervals than those of the OLR model.
2D | two dimensional |
3D | three dimensional |
AAS | atomic absorption spectrometry |
AB | arsenobetaine |
AEC | anion exchange chromatography |
AES | atomic emission spectrometry |
AFS | atomic fluorescence spectrometry |
AMP-PAN | ammonium molybdophosphate-polyacrylonitrile |
AMS | accelerator mass spectrometry |
amu | atomic mass unit |
ANOVA | analysis of variance |
APCI | atmospheric pressure chemical ionisation |
APDC | ammonium pyrrolidine dithiocarbamate |
ASU | Atomic Spectrometry Update |
ATR | attenuated total reflectance |
AVEC | attenuation versus evolved carbon |
BAM | Bundesamt für Materialforscung und Prüfung (Germany) |
BCR | Community Bureau of Reference (of the Commission of the European Communities) |
BEC | background equivalent concentration |
BMEMC | Beijing Municipal Environmental Protection Monitoring Center |
BP | bulk particle |
BSE | back-scattered electron |
C18 | octadecyl bonded silica |
CA | chemical abrasion |
CCD | charge coupled detector |
CCRMP | Canadian Certified Reference Materials Project |
CCT | collision cell technology |
CE | capillary electrophoresis |
CEC | cation exchange capacity |
CF | continuous flow |
CFA | continuous flow analysis |
CIMS | chemical ionisation mass spectrometry |
CLD | chemiluminescence detection |
CNN | convolutional neural network |
CNT | carbon nanotube |
CPE | cloud point extraction |
cps | counts per second |
CRM | certified reference material |
CRPG | Centre de Recherches Petrographiques et Geochimiques France |
CS | continuum source |
CSDFME | continuous sample drop flow-based microextraction |
CT | computed tomography |
CTAB | cetyl trimethylammonium bromide |
CV | cold vapour |
CVG | chemical vapour generation |
CW | continuous wave |
DA | discriminant analysis |
DART | direct analysis in real time |
DBT | dibutyltin |
DDTC | diethyldithiocarbamate |
DE | detection efficiency |
DL | diode laser |
DGA | diglycolamide |
DGT | diffusive gradient in thin films |
DLLME | dispersive liquid liquid microextraction |
DMA | dimethylarsonic acid |
DME | dispersive microextraction |
DMF | dimethylformamide |
DOC | dissolved organic carbon |
DOM | dissolved organic matter |
DPC | diphenylcarbazone |
DRI | Desert Research Institute (USA) |
DRS | diffuse reflectance spectrometry |
DTPA | diethylenetriaminepentaacetic acid |
EA | elemental analyser |
ED | energy dispersive |
EDB | electrodynamic balance |
EDTA | ethylenediaminetetraacetic acid |
EDXRF | energy dispersive X-ray fluorescence |
EDXRFS | energy dispersive X-ray fluorescence spectrometry |
ELM | extreme learning machine |
EM | electron multiplier |
EN | European Committee for Standardisation |
EPMA | electron probe microanalysis |
ERA | Environmental Research Associates |
ERM | European reference material |
ESI | electrospray ionisation |
ETAAS | electrothermal atomic absorption spectrometry |
EtHg | ethylmercury |
ETV | electrothermal vaporisation |
EU | European Union |
EUSAAR | European Supersites for Atmospheric Aerosol Research |
FFF | field flow fractionation |
FAAS | flame atomic absorption spectrometry |
FC | Faraday cup |
FFF | field flow fractionation |
FI | flow injection |
FIA | flow injection analysis |
FT | Fourier transform |
FTIR | Fourier transform infrared |
GAW | Global Atmosphere Watch |
GC | gas chromatography |
GD | glow discharge |
GLS | gas liquid separator |
GPS | global positioning system |
GRIP | Greenland Ice Core Project |
GSJ | Geological Survey of Japan |
HEN | high efficiency nebuliser |
HFSE | high field strength element |
HG | hydride generation |
HPLC | high performance liquid chromatography |
HG | hydride generation |
HILIC | hydrophilic interaction liquid chromatography |
HME | hydrophilicity microextraction |
HPLC | high performance liquid chromatography |
HR | high resolution |
HREE | heavy rare earth element |
IAEA | International Atomic Energy Authority |
IAG | International Association of Geoanalysts |
IAPSO | International Association of the Physical Sciences of the Ocean |
IC | ion chromatography |
ICOS | integrated cavity output spectroscopy |
ICP | inductively coupled plasma |
id | internal diameter |
ID | isotope dilution |
IDA | isotope dilution analysis |
IEC | ion exchange chromatography |
IGGE | Institute of Geophysical and Geochemical Exploration |
IGI | Institute of Geochemistry, Irkutsk (Russia) |
IMEP | International Measurement Evaluation Programme |
INAA | instrumental neutron activation analysis |
INCT | Institute of Nuclear Chemistry and Technology (Poland) |
IOM | Institute of Occupational Medicine (Scotland) |
IPGP | Institut de Physique du Globe de Paris |
IR | infrared |
IRA | isotope ratio analysis |
IRMM | Institute for Reference Materials and Measurements |
IRMS | isotope ratio mass spectrometry |
IS | internal standard |
ISBN | international standard book number |
ISM | incremental sampling methodology |
ISO | International Organization for Standardization |
JIS | Japanese Industrial Standards |
JMC | Johnson Matthey Corporation |
JRC | Joint Research Centre (of the European Commission) |
JSAC | Japan Society for Analytical Chemistry |
KED | kinetic energy discrimination |
LA | laser ablation |
LASS | laser ablation split stream |
Lasso | least absolute shrinkage and selection operator |
LDI | laser desorption ionisation |
LGC | Laboratory of the Government Chemist (UK) |
LIBS | laser-induced breakdown spectroscopy |
LIF | laser-induced fluorescence |
LIFS | laser-induced fluorescence spectrometry |
LLE | liquid–liquid extraction |
LLME | liquid liquid microextraction |
LOD | limit of detection |
LOQ | limit of quantification |
LPME | liquid phase microextraction |
LREE | light rare earth element |
LS | least squares |
MAD | microwave assisted digestion |
MAE | microwave-assisted extraction |
MBT | monobutyltin |
MC | multicollector |
MDL | method detection limit |
MeHg | methyl mercury |
MIBK | methyl isobutyl ketone |
MIL | magnetic ionic liquid |
MIO | magnetic iron oxide |
MIP | microwave induced plasma |
MIR | mid infrared |
MLLE | micro liquid–liquid extraction |
MMA | monomethylarsonic acid |
MP | microwave plasma |
MPI | Max Planck Institute |
MRM | multi reaction monitoring |
MS | mass spectrometry |
MS/MS | tandem mass spectrometry |
MSPE | magnetic solid phase extraction |
MU | measurement uncertainty |
MWCNT | multiwalled carbon nanotube |
m/z | mass to charge ratio |
μLIBS | micro laser-induced breakdown spectroscopy |
μXRF | micro X-ray fluorescence |
μXRFS | micro X-ray fluorescence spectroscopy |
NAA | neutron activation analysis |
NACIS | National Analysis Centre for Iron and Steel |
NBS | National Bureau of Standards |
NCS | National Analysis Center for Iron and Steel (China) |
Nd:YAG | neodymium doped:yttrium aluminium garnet |
NF | Normes Françaises |
NIES | National Institute for Environmental Studies |
NIOSH | National Institute of Occupational Safety and Health |
NIR | near infrared |
NIST | National Institute of Standards and Technology |
NMIJ | National Metrology Institute of Japan |
NMR | nuclear magnetic resonance |
NP | nanoparticle |
NRCC | National Research Council of Canada |
NRCCRM | National Research Centre for Certified Reference Materials (China) |
NTIMS | negative thermal ionisation mass spectrometry |
NWRI | National Water Research Institute |
OM | organic matter |
PAH | polyaromatic hydrocarbon |
PCA | principal component analysis |
PCR | principal component regression |
PDA | photodiode array |
PDMS | polydimethylsiloxane |
PFA | perfluoroalkyl |
PFAS | perfluoroalkyl substance |
PGE | platinum group element |
PhHg | phenylmercury |
PIXE | particle-induced X-ray emission |
PLS | partial least squares |
PLSR | partial least squares regression |
PM2.5 | particulate matter (with an aerodynamic diameter of up to 2.5 μm) |
PM4 | particulate matter (with an aerodynamic diameter of up to 4.0 μm) |
PM10 | particulate matter (with an aerodynamic diameter of up to 10 μm) |
ppb | parts per billion (10−9) |
ppm | parts per million (10−6) |
ppt | parts per trillion (10−12) |
PSL | polystyrene latex |
PTE | potentially toxic element |
PTFE | poly(tetrafluorethylene) |
PTR | proton transfer reaction |
PVC | poly(vinylchloride) |
PVG | photochemical vapour generation |
pXRF | portable X-ray fluorescence |
pXRFS | portable X-ray fluorescence spectrometry |
QA | quality assurance |
QC | quality control |
QCL | quantum cascade laser |
QCLAS | quantum cascade laser absorption spectrometry |
RCS | respirable crystalline silica |
RDD | rotating disc dilutor |
REE | rare earth element |
rf | radiofrequency |
RIMS | resonance ionisation mass spectrometry |
RM | reference material |
RP | reversed phase |
RMSEP | route mean square error of prediction |
RSD | relative standard deviation |
RSF | relative sensitivity factor |
RTC | Resource Technologies Corporation |
SAEME | surfactant-assisted emulsification microextraction |
SARM | South African Reference Material |
SAX | strong anion exchange |
SAXS | small angle X-ray scattering |
SBET | simplified bioaccessibility extraction test |
SBME | solvent bar micro-extraction |
SC | single collector |
SCF | supercritical fluid |
SD | standard deviation |
SDD | silicon drift detector |
SDS | sodium dodecyl sulfate |
SE | standard error |
SEC | size exclusion chromatography |
SEM | scanning electron microscopy |
SEM-EDS | scanning electron microscopy energy dispersive (X-ray) spectrometry |
SF | sector field |
SFOD | solidification of a floating organic droplet |
SHRIMP | sensitive high resolution ion microprobe |
SI | Système International (d’unités) |
SIMS | secondary ion mass spectrometry |
SLME | solid liquid microextraction |
SMPS | scanning mobility particle sizer |
S/N | signal-to-noise ratio |
SOA | secondary organic aerosol |
SOC | soil organic carbon |
SOM | soil organic matter |
sp | single particle |
SPAMS | single particle aerosol mass spectrometry |
SPE | solid phase extraction |
SPME | solid phase microextraction |
SPR | suspended particulate reagent |
SPS | spectrapure Standards |
SQT | slotted quartz tube |
SR | synchrotron radiation |
SRM | standard reference material |
SS | solid sampling |
SSB | sample standard bracketing |
SSID | species specific isotope dilution |
SSME | supramolecular solvent microextraction |
SVM | support vector machine |
TA | thermal annealing |
TBT | tributyltin |
TC | total carbon |
TD | thermal desorption |
TEM | transmission electron microscopy |
TEOM | tapered element oscillating microbalance |
TGA | thermal gravimetric analysis |
TIMS | thermal ionisation mass spectrometry |
TMAH | tetramethylammonium hydroxide |
TML | tetramethyllead |
TOF | time-of-flight |
TXRF | total reflection X-ray fluorescence |
TXRFS | total reflection X-ray fluorescence spectrometry |
UACPE | ultrasound-assisted cloud point extraction |
UA | ultrasound-assisted |
UAE | ultrasound-assisted extraction |
UAEME | ultrasound-assisted emulsification microextraction |
UBMG | unified bioaccessibility method (gastric fluid only) |
UME | National Metrology Institute of Turkey |
USB | universal serial bus |
US EPA | United States Environmental Protection Agency |
USGS | United States Geological Survey |
USN | ultrasonic nebuliser |
UV | ultraviolet |
UV-VIS | ultraviolet-visible |
VG | vapour generation |
VIS-NIR | visible near infrared |
VIS-NIRS | visible near infrared spectrometry |
VSMOW | Vienna Standard Mean Ocean Water |
WDS | wavelength dispersive spectrometry |
WDXRF | wavelength-dispersive X-ray fluorescence |
WDXRFS | wavelength-dispersive X-ray fluorescence spectrometry |
WHO | World Health Organisation |
WMO | World Metrological Organisation |
XANES | X-ray absorption near-edge structure |
XAS | X-ray absorption spectroscopy |
XRD | X-ray diffraction |
XRF | X-ray fluorescence |
XRFS | X-ray fluorescence spectrometry |
Z | atomic number |
Footnote |
† Review coordinator. |
This journal is © The Royal Society of Chemistry 2020 |