Chiara
Giorio‡
*a,
Steven J.
Campbell
a,
Maurizio
Bruschi
b,
Alexander T.
Archibald
ac and
Markus
Kalberer
*a
aDepartment of Chemistry, University of Cambridge, Lensfield Road, Cambridge, CB2 1EW, UK. E-mail: chiara.giorio@atm.ch.cam.ac.uk; markus.kalberer@atm.ch.cam.ac.uk
bDipartimento di Scienze dell’Ambiente e del Territorio e di Scienze della Terra, Università degli Studi di Milano Bicocca, Piazza della Scienza 1, Milano, 20126, Italy
cNational Centre for Atmospheric Science, UK
First published on 6th March 2017
Ozonolysis of alkenes is a key reaction in the atmosphere, playing an important role in determining the oxidising capacity of the atmosphere and acting as a source of compounds that can contribute to local photochemical “smog”. The reaction products of the initial step of alkene-ozonolysis are Criegee intermediates (CIs), which have for many decades eluded direct experimental detection because of their very short lifetime. We use an innovative experimental technique, stabilisation of CIs with spin traps and analysis with proton transfer reaction mass spectrometry, to measure the gas phase concentration of a series of CIs formed from the ozonolysis of a range of both biogenic and anthropogenic alkenes in flow tube experiments. Density functional theory (DFT) calculations were used to assess the stability of the CI-spin trap adducts and show that the reaction of the investigated CIs with the spin trap occurs very rapidly except for the large β-pinene CI. Our measurement method was used successfully to measure all the expected CIs, emphasising that this new technique is applicable to a wide range of CIs with different molecular structures that were previously unidentified experimentally. In addition, for the first time it was possible to study CIs simultaneously in an even more complex reaction system consisting of more than one olefinic precursor. Comparison between our new experimental measurements, calculations of stability of the CI-spin trap adducts and results from numerical modelling, using the master chemical mechanism (MCM), shows that our new method can be used for the quantification of CIs produced in situ in laboratory experiments.
RR′CCR′′R′′′ + O3 → RR′COOOCR′′R′′′ → RRCOO + R′′C(O)R′′′ |
The formation of CIs was postulated over 40 years ago4 to proceed through the reaction of an alkene functional group with ozone (O3) but only in the last decade has our understanding of the short-lived CIs begun to flourish. The CI that is produced is thermally “hot” (sometimes referred to as an excited CI) and may undergo spontaneous decomposition to form other products5 or collisions with other molecules to lead to the stabilised CI (SCI).
The majority of recent studies that directly detected and studied SCI in the gas phase used a different route to its formation than the ozonolysis mechanism described above (e.g. Welz et al.,6 and references therein). Rather than reaction between O3 and unsaturated compounds, gem-iodo compounds have been shown to form CIs when photolysed in the presence of air:
CH2I2 + hν (O2) → CH2OO + I + I |
The formation of SCIs via this reaction has enabled new studies to probe the kinetics of bimolecular reactions that SCIs can undergo in the atmosphere. These studies have made use of a range of advanced laboratory techniques including photoionisation mass spectrometry and tunable synchrotron photoionisation mass spectrometry.6,7 Those techniques have been applied to the direct measurement of formaldehyde oxide, the simplest CI, and later on have made possible the discovery of the conformer-dependent reactivity of syn- and anti-acetaldehyde oxides,8 as these techniques are capable of distinguishing the two conformers from the difference in photoionisation energy. Subsequent studies detected formaldehyde oxide using near-UV cavity ring down spectroscopy,9 UV-Vis spectroscopy10–12 and IR spectroscopy.13 The latter was used also for the direct detection of the large β-pinene Criegee intermediate from an ozonolysis reaction.14
On the other hand, indirect measurements, exploiting the oxidation of SO2 to H2SO4 in the presence of an ˙OH scavenger, were used in Hyytiälä (a boreal forest in Finland) to quantify an oxidant “X” tentatively associated with SCIs with concentrations in the order of 5 × 104 molecules per cm3.15,16 Other indirect methods exploited more specific reactions of organic reagents with CIs to identify their structure; Horie et al.17 found that hexafluoroacetone reacts rapidly with CIs to form compounds which are assignable to ozonides, 3,3-di(trifluoro)methyl-1,2,4-trioxolanes, which can be detected in FTIR spectroscopy. Very recently we presented a new cost-effective method to stabilise and detect CIs online in the gas phase by reacting them with spin traps and analysing the adducts that form using proton transfer reaction time of flight mass spectrometry (PTR-ToF-MS).18 This method was successfully applied to the measurement of CIs from the ozonolysis of α-pinene, the structure of the CI-spin trap adduct was characterised in detail and we showed the potential of this technique to be used for quantification purposes.18
Here we expand on our previous study18 by measuring CIs from the ozonolysis of a series of biogenic and anthropogenic VOCs such as β-pinene, limonene, methacrolein, cis-2-hexene, styrene and also a mixture of more than one olefinic precursor. Experimentally measured concentrations of CI-spin trap adducts are compared with those which are theoretically expected, and the differences are explained in terms of the stability of CI-spin trap adducts and instrumental response. We demonstrate that our new technique is uniquely capable of quantifying many different CIs simultaneously and thus provides a significant step towards studying CIs in realistic, complex reaction mixtures.
Fig. 1 Schematic of the experimental set up, consisting of a 2.5 L glass flow tube where an olefinic precursor reacts with ozone, a mixing point (T-fitting) in which the spin trap is mixed with the sample flow from the flow tube, and a heated PTFE tube in which the spin trap reacts with the CI before detection and quantification with PTR-ToF-MS. For the experiments where two VOC precursors were mixed, an additional pear shaped flask was added in-line with the N2 carrier gas flow. Modified from Giorio et al.18 |
The olefinic precursors were evaporated from a 25 mL pear-shaped flask filled with 0.5 mL of pure compound and introduced continuously in the flow tube using N2 (at 175 cm3 min−1, oxygen-free nitrogen, BOC) carrier gas regulated via a 20–2000 cm3 min−1 mass flow controller (MKS 1179A Mass-Flo® controller). For experiments with cis-2-hexene and methacrolein, due to the fact that they are more volatile compared to other VOC precursors, the pear shaped flask was submersed in a dry ice/acetonitrile bath (−41 °C) in order to maintain a lower steady-state concentration of these compounds in the flow tube. The other VOCs were maintained at ambient temperature. Ozone was produced by flowing synthetic air (Zero grade, BOC) past a UV lamp (185/254 nm, Appleton Woods®) at 155 cm3 min−1 (20–2000 cm3 min−1 MKS 1179A Mass-Flo® controller). The UV lamp used in this study produced a lower amount of ozone compared with the previous study on α-pinene ozonolysis,18 reaching a maximum concentration in our system of 18 ppm measured using a UV photometric ozone analyser (Thermo Scientific model 49i) and shown in Fig. S2.† The outlet of the flow tube is mixed into a T-connection (stainless steel 1/4′′ (∼6.35 mm) T-fitting, Swagelok®) with a 310 cm3 min−1 flow (50–5000 cm3 min−1 MKS 1179A Mass-Flo® controller) of DMPO in N2 (oxygen-free nitrogen, BOC) evaporated from a 25 mL flask filled with 0.5 mL of DMPO, which is held in a water bath at 40 °C. Connecting tubes and the T-connection were kept at 85 °C to avoid condensation of DMPO.
For quantification of the initial concentrations of β-pinene and limonene both the protonated molecular ion C10H17+ and the fragment C6H9+ were used, for cis-2-hexene both the protonated molecular ion C6H13+ and the main fragment C3H7+, for methacrolein the protonated molecular ion C4H7O+ and the fragments C3H7+ and C3H5+ while for styrene, only the protonated molecular ion C8H9+ was used for quantification.
DMPO and VOC signals are often in saturation during the experiments and therefore the corresponding 13C isotopes were used for quantification. The initial concentrations of VOCs and DMPO were also evaluated by diluting the sample flow with pure N2 in a ratio of 1:10 as detailed in Giorio et al.18
Parameter | Value (units) |
---|---|
Temperature | 289.15 K |
Number density (M) | 2.60 × 1019 (molecules per cm3) |
[H2O] | 1.23 × 1014 (molecules per cm3) |
[O3] | 4.41 × 1014 (molecules per cm3) |
Fig. 2 Molecular structures and acronyms of the CIs detected from the ozonolysis of cis-2-hexene, methacrolein, β-pinene, styrene and limonene. |
An extensive search on the potential energy surface (PES) of these CIs was carried out to identify the relevant minimum energy conformations. It turns out that for CIC2, CIC4 and CIC3Al the syn conformation is more stable than the anti one by 1.8, 1.5 and 5.8 kcal mol−1, respectively, whereas in CIC9βpin the anti conformer is more stable than the syn conformer by about 2 kcal mol−1 (n.b. hereafter we will refer to the syn conformation as that in which the outer oxygen points toward the alkyl group in CIC2, CIC4 and CIC3Al, and toward the less H-rich C(CH3)2 group in CIC9βpin; see Fig. 3 for the definition of syn and anti conformations). It is worth noting that these results are in good agreement with previous calculations carried out using ab initio highly correlated methods.34–37 The addition of CIs with DMPO have been investigated by taking into account both anti and syn conformers to inspect potential differences in the reactivity of the two species.
The cycloaddition of the CIs to the spin-trap DMPO can occur through the attack of the carbon atom of the CI on either the nitrogen or the oxygen atoms of the DMPO nitrone group leading to the formation of a 5-membered or a 6-membered ring, respectively. DFT calculations show that for all of the compounds investigated, the 6-membered ring species is much more stable than the corresponding 5-membered ring species (see Table S1†), in agreement with the results obtained from the investigation of the formation of CI–DMPO adducts from the ozonolysis of α-pinene.18 Therefore, in the following, only the addition of CIs to DMPO to give 6-membered ring adducts will be considered.
The first step in the reaction of the CIs with DMPO is the formation of pre-reactive van der Waals adducts in which the carbonyl oxide approaches the nitrone group of DMPO (see Fig. S9–S13†). The interaction energies of such van der Waals complexes are within −3.6 and −7.2 kcal mol−1, with the two extremes given by CIC3Al in the syn and anti conformations (see Fig. 3).
The reactivity of the CIs strongly depends on the number of the substituents attached to the carbon atom of the carbonyl oxide, and on the initial conformation of the CI reactants (see Fig. 5 and 6). The reaction of the parent formaldehyde oxide CIC1 with DMPO is barrierless as the activation enthalpy is lower than the enthalpy of the separated reactants (ΔH# = −5.8 kcal mol−1), and only 0.5 kcal mol−1 higher than that of the van der Waals adduct. This reaction is also strongly exothermic with the value of the reaction enthalpy (ΔHr) as low as −41 kcal mol−1. The energy barriers for the addition to DMPO of CIC2 and CIC4, featuring one alkyl substituent bounded to the carbon atom of the carbonyl oxide, are slightly larger than that calculated for the parent CIC1, and the reactions are slightly less exothermic. Indeed, when considering the most stable syn conformers (CIC2(syn) and CIC4(syn)) as reactants, the energy barriers for both species are about 2 kcal mol−1 with respect to the separated reactants, and about 7 kcal mol−1 with respect to the van der Waals complexes. The reaction enthalpies of these two cycloadditions (ΔHr) are also very similar and equal to about −32 kcal mol−1. The reaction is still more favoured when starting from the less stable anti conformers (CIC2(anti) and CIC4(anti)). In this case the ΔH# is negative by 3 kcal mol−1 with respect to the separated reactants, and only 2 kcal mol−1 higher than the van der Waals complexes. The ΔHr is lower than that of the syn conformer (ΔHr = −38 kcal mol−1) due to the fact that the reactants are higher in energy, and that the ring closure of CIC2(anti) and CIC4(anti) yields the RR/SS diastereoisomers which are more stable than the RS/SR ones formed by the ring closure of CIC2(syn) and CIC4(syn).
The activation enthalpy calculated for the cycloaddition of CIC9βpin in the most stable syn conformation is equal to 11.7 kcal mol−1, a value significantly larger than that calculated for the CIs discussed above. Correspondingly, the ΔHr is equal to about −24 kcal mol−1, more than 10 kcal mol−1 higher than that calculated for the other CIs. The reaction of the less stable anti conformer has an energy profile similar to that of the syn conformer with ΔH# and ΔHr equal to −8 and −26 kcal mol−1, respectively. The difference in reactivity of CIC9βpin compared to the other CIs may be due to the connectivity of the carbon atom of the carbonyl oxide, which in CIC9βpin is bound to two other carbons. It is worth noting that the same trend in activation and reaction energies was observed for the addition of DMPO to the two CIs generated by the ozonolysis of α-pinene that we have previously investigated.18 The two adducts have one and two alkyl substituents attached to the carbon atom of the carbonyl oxide, and feature energy barriers and reaction energies that differ by more than 10 kcal mol−1 in favour of the less substituted species.
CIC3Al is the species featuring the largest difference in the reactivity of the syn and anti conformers. Considering the most stable syn conformer, it turns out that ΔH# and ΔHr are equal to 8.0 and −25 kcal mol−1, which are values similar to those calculated for CIC9βpin. On the other hand, considering the less stable anti conformer, the energy profile is much more favourable as the barrier is equal to about −2 kcal mol−1 with respect to the separated reactants (+5.2 kcal mol−1 with respect to the van der Waals complex) and the ΔHr is equal to −33 kcal mol−1, values that fit better those calculated for CIC2 and CIC4.
Fig. 4 summarizes the results presented above showing the reaction energy profiles for the formation of the CI–DMPO adducts starting from the CIs in the more stable (Fig. 4a) and less stable (Fig. 4b) conformations. These results show that the reaction of the investigated CIs with DMPO occurs very rapidly, with the exception of CIC9βpin for which, in both conformations the activation energies are larger than those calculated for the other CIs. In addition, all the reactions are strongly exothermic, but with an ΔHr value that becomes significantly less negative upon increasing the number of substituents of the carbonyl oxide carbon atom (i.e. the ΔHr of the CIC9βpin–DMPO adduct is more than 15 kcal mol−1 higher than that of CIC1–DMPO).
It also worth noting that for all the CIs investigated the less stable conformer has a more favourable energy profile. In particular, CIC3Al, which is characterized by the larger difference in stability of the conformers, also features a larger change in the reactivity of such conformers. Similar behaviour has been observed experimentally by Taatjes et al.8 who reported that the anti (less stable) conformer of acetaldehyde oxides is more reactive than the syn one with both H2O and SO2.
Fig. 5 Time-series of CIs formed from the ozonolysis of β-pinene (a), cis-2-hexene (b) and a mixture of β-pinene and cis-2-hexene (c) in a steady state flow tube reaction system. |
The observed concentrations of the two CI–DMPO adducts are about three to four orders of magnitude lower compared with the initial concentration of the reagents, which were 18, 83 and 110 ppm for O3, β-pinene and DMPO, respectively. The concentrations of CI–DMPO adducts are also about three and four orders of magnitude lower compared with the steady-state concentration of β-pinene (Table 2) which is in excess with respect to ozone. Notably, ozone can react not only with alkenes but also with the spin trap DMPO, therefore decreasing its concentration and decreasing the efficiency of the spin trapping reaction. For this reason, in the series of experiments that we report here, ozone concentration was lower than in the previous experiments performed with α-pinene18 and in most of the cases was the limiting reagent, in order to minimise losses of DMPO (see VOC concentrations in Table 2).
Measureda [VOC]0 (ppm) | Measuredb [VOC]ss (ppm) | CIs–DMPO | Measuredc [CIs–DMPO]ss (ppb) | Measured ratios [CIs–DMPO]:[VOC]0 | Measured fraction (%) of CIs–DMPOc | Modelled [SCIs] (ppb) | Modelled fraction (%) of SCIs | |
---|---|---|---|---|---|---|---|---|
a Concentration measured in dilution experiments. b Experimental uncertainty expressed as standard deviation between 2–3 repeated experiments. Larger uncertainties affect the most volatile VOCs for difficulties in maintaining a constant gas phase concentration in our experimental set-up. c Experimental uncertainty expressed as standard deviation between 2–3 repeated experiments. It does not take into account systematic errors due to unknown fragmentation pattern. d Referred to SCIC10K. | ||||||||
VOCs | ||||||||
β-Pinene | 83 | 65 ± 2 | CIC1–DMPO | 14.8 ± 3.6 | 2 × 10−4 | 79.6 ± 33.5 | 250 | 59.1 |
CIC9βpin–DMPO | 3.8 ± 2.8 | 5 × 10−5 | 20.4 ± 16.6 | 173 | 40.9 | |||
cis-2-Hexene | 120 | 24 ± 1 | CIC2–DMPO | 14.5 ± 1.9 | 1 × 10−4 | 80.6 ± 22.7 | 875 | 50 |
CIC4–DMPO | 3.5 ± 2.6 | 3 × 10−5 | 19.4 ± 15.2 | 875 | 50 | |||
Methacrolein | 838 | 369 ± 419 | CIC1–DMPO | 8.7 ± 1.3 | 1 × 10−5 | 84.5 ± 19.4 | 334 | 93.8 |
CIC3Al–DMPO | 1.6 ± 0.5 | 2 × 10−6 | 15.5 ± 5.6 | 22 | 6.2 | |||
Limonene | 6.3 | 1.4 ± 0.3 | CIC1–DMPO | 7.8 ± 0.6 | 1 × 10−3 | 42.2 ± 10.1 | 0.5 | 0.3 |
CIC9Lim–DMPO | 7.2 ± 2.8 | 1 × 10−3 | 38.9 ± 17.5 | 0 | 0 | |||
CIC10K/C10Al–DMPO | 3.5 ± 0.8 | 6 × 10−4 | 18.9 ± 6.1 | 169d | 99.7 | |||
Styrene | 78 | 8 ± 3 | CIC1–DMPO | 18.6 ± 5.2 | 2 × 10−4 | 93.5 ± 38.4 | 191 | 50 |
CIC7Ar–DMPO | 1.3 ± 0.8 | 2 × 10−5 | 6.5 ± 4.5 | 191 | 50 | |||
mixVOCs | ||||||||
β-Pinene | 96 | 55 ± 13 | CIC1–DMPO | 6.8 ± 1.1 | 7 × 10−5 | 24.3 ± 7.8 | 101 | 5.1 |
CIC9βpin–DMPO | 2.6 ± 2.4 | 3 × 10−5 | 9.3 ± 9.0 | 69 | 3.5 | |||
cis-2-Hexene | 153 | 88 ± 6 | CIC2–DMPO | 11.8 ± 1.6 | 8 × 10−5 | 42.1 ± 13.1 | 897 | 45.7 |
CIC4–DMPO | 4.9 ± 2.2 | 3 × 10−5 | 17.5 ± 9.3 | 897 | 45.7 |
The concentrations of the CI–DMPO adducts obtained are stable over time scales of one hour or more in the steady-state flow tube set up used here (Fig. 5 and 6) and are well reproducible in this system, with a variation of ±25% on average observed in multiple repeats. The slow initial increase in CI–DMPO concentration is likely associated with the varying amount of O3 produced from the UV lamp. In fact, the UV lamp has a warm up time of about 20–30 minutes in which ozone concentration exponentially increases before reaching a plateau (Fig. S2†). After the UV lamp is switched off, the concentration of CI–DMPO adducts decreases slowly to zero, probably due to memory effects as the DMPO and its adducts can condense on the walls of the tubing.
Similarly, for cis-2-hexene the two expected CI–DMPO adducts with molecular formulas C10H20NO3+ and C8H16NO3+ have been detected at m/z 202.1438 and 174.1125, respectively and likewise, they are stable over time in the steady-state reaction system (Fig. 5b). Additional experiments in which both β-pinene and cis-2-hexene have been concurrently injected in the flow tube have been carried out. Also in this case, all four expected CIs from both VOCs have been detected with good repeatability as shown in Fig. 5c. To the authors’ knowledge, this is the first time in which detection and identification of CIs from multiple VOC precursors has been achieved, clearly demonstrating the capability of this technique to characterise CIs in complex, atmospherically relevant VOC mixtures. Concentrations of CIs from cis-2-hexene are higher than the concentrations of CIs from β-pinene (Table 2) which is consistent with the higher initial concentration of cis-2-hexene (153 ppm) than that of β-pinene (96 ppm).
Furthermore, the study has been additionally extended to other VOCs with different chemical properties and volatilities. Methacrolein, a first-generation oxidation product from isoprene, has been ozonolysed in the flow tube and the two expected CIs have been detected, the CIC1–DMPO and the aldehydic CIC3Al–DMPO (Fig. 6a). Also for styrene, an aromatic olefin, both the CIC1–DMPO and the aromatic CIC7Ar–DMPO have been detected (Fig. 6b).
Concerning limonene, a diene monoterpene, all CIs from the reaction of ozone with both the endo- and exo-double bond have been detected (Fig. 6c). From the comparison between the rate of the reaction of ozone with limonene and that of ozone with limononaldehyde, and the low yields of limona ketone, the ozonolysis of limonene should occur predominantly at the endo-double bond (95:5).38 However, ozone was in excess in our conditions (18 ppm of ozone and 6 ppm of limonene) which can explain the high concentration of CIs detected from the less favoured reaction channel. No second generation CIs were detected from the reaction of ozone with an olefinic first-generation oxidation product, but these CIs are likely to be very low volatility compounds and they probably partition quickly into the condensed phase.
In general, the detected mixing ratios of CIs are between three and five orders of magnitude lower than the initial concentrations of the olefinic precursor and between two to four orders of magnitude lower than the measured concentration of olefinic precursor at the steady state (see Table 2). The concentration of olefinic precursors is generally in excess with respect to ozone, except for limonene. During the three seconds reaction time in the flow tube, CIs can decompose to form a wide range of further products, including dioxiranes and vinylhydroperoxides which retain the same molecular mass as the CIs. According to the reaction mechanism proposed by Adam et al.39 the reaction of dioxirane with DMPO yields a product with a mass different to the CI–DMPO adducts. As pointed out by Liu et al.40 the vinylhydroperoxide forms with a significant excess energy and rapidly undergoes O–O bond fission to form ˙OH. Nevertheless, the presence of organic acids may help to dissipate the excess energy and stabilise this species so it has to be assessed in future studies whether the vinylhydroperoxide may interfere to some degree with the measurement.
Because of the high VOC concentrations used here, their instrumental signals are likely outside of the linear range of the instrument and therefore the steady-state concentrations derived may be lower limits of their actual concentrations in the flow tube. Other factors should be optimised and characterised for an improved quantification of the CI-adducts, including the effect of secondary organic aerosol formation in the flow tube, wall losses throughout the system, the unknown kinetics of the CI-spin trap reactions, and unknown fragmentation patterns of the CI–DMPO adducts in the mass spectrometer.
To the authors’ knowledge, this is the first time in which detection of CIs from methacrolein, limonene, styrene and cis-2-hexene is achieved, and the first time in which four CIs from a mixture of two olefinic precursors were simultaneously detected.
The results of the AtChem/MCM modelling simulating the experiment of ozonolysis of the VOC mixture containing β-pinene and cis-2-hexene are reported in Fig. 7. The results show the decay of β-pinene, cis-2-hexene and ozone with a time resolution of one second (Fig. 7a) in which it can be seen that after a three seconds reaction time in the flow tube, concentrations of β-pinene and cis-2-hexene are still very high as ozone is not in excess and its concentration in turn rapidly decreases. It can also be seen in Fig. 7c that excited CIs decompose quickly in the flow tube and their concentrations in our steady-state reaction system are lower than the detection limits (∼30 ppt).18 Conversely, detectable amounts in the ppb range of SCIs are still present at the end of the flow tube (Fig. 7d) and can therefore be detected by our technique.
The results of the AtChem/MCM modelling for all other VOCs are reported in Fig. S3 to S7,† showing the time-series of VOCs and ozone consumption, and excited and stabilised CIs production. In general, the results of the AtChem/MCM model show that the ozonolysis reaction is very fast under our experimental conditions and the excited CIs decompose quickly in the flow tube so that their concentrations (mostly below ppb levels) are estimated to be far below detection limits at the mixing point with DMPO (after 3 seconds reaction time) for all experiments. On the contrary, detectable amounts in the ppb range of SCIs are still present at the end of the flow tube and they can therefore be trapped by the DMPO. Our results show that the method used here is suitable for the detection of SCIs in laboratory experiments. Further studies are needed to investigate the possibility of detecting excited CIs.
A comparison between theoretically expected concentrations of SCIs and experimental measurements of CI–DMPO adducts is reported in Table 2. The results show that measured concentrations of CI–DMPO adducts are at least one order of magnitude lower than the modelled concentrations of SCIs from the AtChem/MCM model. This may be explained with wall losses in the systems, which were not estimated. The efficiency of the spin trapping reaction should be good, as ozone was generally the limiting reagent, to minimise reaction with DMPO, and DMPO was at least 4 orders of magnitude in excess with respect to the CIs. Nevertheless, reaction kinetics of SCIs with DMPO are unknown and this could also partly explain the discrepancy between experimental measurements and modelling results. The discrepancy is larger for the CIC9βpin for which the reaction with DMPO has a larger energy barrier decreasing the adduct formation rate (Fig. 6). In addition, the fragmentation pattern of CIs–DMPO adducts in the PTR-ToF-MS is unknown which can lead to an underestimation of CIs–DMPO concentration. Nevertheless, MCM is not a fully explicit mechanism and, for example, does not include self-reaction of SCIs, overestimating SCI concentrations.41
The measured ratios of CIs produced from the different precursors do not match well the theoretically calculated distribution from the AtChem/MCM model. For example, for the ozonolysis of β-pinene, the MCM model predicts a distribution of 59% of SCIC1 and 41% of SCIC9βpin while the experimentally measured distribution is 80% of CIC1–DMPO and 20% of CIC9βpin–DMPO. This large discrepancy can be explained by considering the stability of the CI–DMPO adducts. The results of the DFT calculations show that the CIC1–DMPO is more stable than the CIC9βpin–DMPO. In addition larger CIs, like CIC9βpin and CIC7Ar, were generally measured at lower concentrations than expected from the modelling which might be because of the low volatility of these large CIs resulting potentially in wall losses. However, the temperature of the line after the DMPO mixing point was kept at 85 °C to minimise condensation on the walls. Volatility-related artefacts could help in explaining why there is a better match between measurements and modelling results for smaller CIs compared to the large β-pinene CIC9βpin and styrene CIC7Ar.
In future studies, experimental strategies to improve quantification could aim to account for both the stability of the CI–DMPO adducts, as adducts with lower stability tends to be more underestimated, and their volatility because some of the adducts have rather high molecular weights, and partitioning into the condensed phase may be non-negligible. This seems to be suggested also by the memory effects in the system (i.e., the slow decrease of signal after the production of ozone in the flow tube is turned off, Fig. 5 and 6).
In the case of limonene, the MCM reaction scheme considers only the addition of ozone to the double bond in the endo position as the endo-double bond is more reactive than the exo-double bond (95:5).38 However, in our experiments, all CIs from the reaction of ozone with both the endo- and exo-double bond have been detected, with ozone being in excess compared with limonene. However, surprisingly the CI–DMPO from the reaction of ozone with the exo-double bond were detected at higher concentrations than the CI–DMPO from reaction at the endo-double bond. This may be explained by different stabilities and volatilities of the CI–DMPO adducts.
Second generation CIs from the ozonolysis of the olefinic oxidation products from limonene were not detected in this series of experiments, which is consistent with theoretical calculations (Fig. S8†) that predict concentrations orders of magnitude below detection limits. However, second generation CIs may be produced in the condensed phase as the oxidation products from limonene ozonolysis are likely to partition efficiently into the particle phase.
Simulations of the AtChem/MCM model in which ozone concentration was changed according to the output of the UV lamp (Fig. S2†) show that the initial increase of the concentrations of CIs–DMPO adducts before reaching a plateau is mainly due to the warming up time of the UV lamp before it reaches a constant ozone output (Fig. 8).
The method has great potential to be used for the quantification of SCIs in laboratory experiments although specific calibration procedures need to be developed to improve accuracy, including assessment of instrumental response at high VOC concentration and estimating fragmentation patterns of CI–DMPO adducts and reaction kinetics between CIs and spin traps. The integrated approach used in this study combining DFT calculations to determine the stability of the CI–DMPO adducts, experimental measurements and MCM modelling reveals the importance of assessing the stability of adducts to aid the interpretation of measurement results but also volatility in the case of larger SCIs. In this context, synthesis of more volatile nitrone spin traps may help to overcome this weakness. The suitability of the technique to characterise excited CIs will need to be determined in future studies.
According to recent estimates, ambient SCI concentration in Hyytiälä (Finland) in the summer of 2010 was about 5 × 104 molecules per cm3 with an order of magnitude uncertainty.16 Such concentration levels are about four to five orders of magnitude lower than the detection limits of our instrument18 and extremely challenging for any instrumental technique currently available even with an ad hoc pre-concentration method. Nevertheless, our new technique is uniquely capable of quantifying many different SCIs simultaneously and thus provides a significant step towards studying SCIs in realistic, complex reaction mixtures in the laboratory.
The method proposed here can be used for direct kinetic measurements, however, the reactivity of the spin trap toward ozone represents a limiting factor on the range of reaction conditions that can be tested. Generation of CIs in ozone-free conditions, e.g. via a diiodoalkane photolysis method,6 would allow us to perform kinetic experiments and compare our method with other measurement methods like PIMS and IR/UV spectroscopy.
Recently, extremely low volatile organic compounds (ELVOC) have been discovered, which irreversibly condense into the particle phase enhancing, and in some cases dominating, the early stage of atmospheric aerosol formation (nucleation), constituting a crucial link between new particle formation and cloud condensation nuclei formation.42,43 The suggested formation pathway of ELVOC from biogenic VOCs relies on initiation via ozonolysis of terpenes, and therefore CI formation, followed by an autoxidation process involving molecular oxygen (vinylhydroperoxide pathway).42,44 Measurement of terpene derived CIs using spin traps as CI scavengers may help in mechanistic studies to elucidate ELVOC formation mechanism, and their role in particle nucleation.
Footnotes |
† Electronic supplementary information (ESI) available. See DOI: 10.1039/c7fd00025a |
‡ Aix Marseille Univ, CNRS, LCE, Marseille, France. |
This journal is © The Royal Society of Chemistry 2017 |