Hui
Li‡
a,
Christopher
Paolucci‡
ab,
Ishant
Khurana
c,
Laura N.
Wilcox
c,
Florian
Göltl
d,
Jonatan D.
Albarracin-Caballero
c,
Arthur J.
Shih
c,
Fabio H.
Ribeiro
c,
Rajamani
Gounder
*c and
William F.
Schneider
*a
aDepartment of Chemical and Biomolecular Engineering, University of Notre Dame, 182 Fitzpatrick Hall, Notre Dame, IN 46556, USA. E-mail: wschneider@nd.edu
bDepartment of Chemical Engineering, University of Virginia, 102 Engineer's Way, Charlottesville, VA 22904, USA
cCharles D. Davidson School of Chemical Engineering, Purdue University, 480 Stadium Mall Drive, West Lafayette, IN 47907, USA. E-mail: rgounder@purdue.edu
dDepartment of Chemical and Biological Engineering, University of Wisconsin-Madison, 1415 Engineering Drive, Madison, WI 53706, USA
First published on 28th December 2018
The speciation and structure of Cu ions and complexes in chabazite (SSZ-13) zeolites, which are relevant catalysts for nitrogen oxide reduction and partial methane oxidation, depend on material composition and reaction environment. Ultraviolet-visible (UV-Vis) spectra of Cu-SSZ-13 zeolites synthesized to contain specific Cu site motifs, together with ab initio molecular dynamics and time-dependent density functional theory calculations, were used to test the ability to relate specific spectroscopic signatures to specific site motifs. Geometrically distinct arrangements of two framework Al atoms in six-membered rings are found to exchange Cu2+ ions that become spectroscopically indistinguishable after accounting for the finite-temperature fluctuations of the Cu coordination environment. Nominally homogeneous single Al exchange sites are found to exchange a heterogeneous mixture of [CuOH]+ monomers, O- and OH-bridged Cu dimers, and larger polynuclear complexes. The UV-Vis spectra of the latter are sensitive to framework Al proximity, to precise ligand environment, and to finite-temperature structural fluctuations, precluding the precise assignment of spectroscopic features to specific Cu structures. In all Cu-SSZ-13 samples, these dimers and larger complexes are reduced by CO to Cu+ sites at 523 K, leaving behind isolated [CuOH]+ sites with a characteristic spectroscopic identity. The various mononuclear and polynuclear Cu2+ species are distinguishable by their different responses to reducing environments, with implications for their relevance to catalytic redox reactions.
One strategy to reduce this complexity is to intentionally synthesize zeolites with framework Al distributions that present one or a few distinct Al site ensembles. This strategy is particularly promising for zeolites of relatively high symmetry, such as the chabazite (SSZ-13) framework that is composed of a single symmetry-distinct tetrahedral site. SSZ-13 samples synthesized using only organic N,N,N-trimethyl-1-adamantylammonium (TMAda+) structure-directing cations nominally contain only isolated framework Al sites,39 and are found to contain predominantly [CuOH]+ ions after aqueous Cu ion exchange and high temperature (>473 K) oxidation, based on titrimetric analysis and vibrational and X-ray spectroscopies.38 In contrast, SSZ-13 samples synthesized in the presence of TMAda+ and Na+ as co-structure-directing cations39 contain detectable fractions of paired Al sites in 6-membered rings (6MR). After Cu ion exchange and high temperature oxidative treatment, these paired Al sites are observed to preferentially host Cu2+ ions (Z2Cu) before isolated Al sites are occupied by [CuOH]+ ions (ZCuOH).38 Z2Cu and ZCuOH are expected to contribute differently to ultraviolet-visible (UV-Vis) absorption spectra based on ligand-field arguments and density functional theory (DFT) calculations, consistent with d–d transition and ligand-to-metal charge transfer (LMCT) features in experimentally-measured UV-Vis spectra that are observed to change with Cu content in Cu-SSZ-13 samples.6,48–50
These single Cu species may coexist with dimeric or higher nuclearity Cu clusters. Oxygen-bridged Cu dimers are well established to be present and quantifiable with CO temperature programmed reduction,15 to be plausible active sites for NO and N2O decomposition14,15,51–53 and partial CH4 oxidation in Cu-exchanged zeolites,17,30,33,54–62 including Raman63,64 and UV-Vis14,55 spectroscopic observations and CO temperature programmed reduction to quantify such sites. In Cu-SSZ-13 samples of certain composition (Si/Al = 5, Cu/Al = 0.3–1.6), oxygen-bridged Cu dimers and larger Cu oxide aggregates are detected by X-ray spectroscopy and are the dominant active sites for NO oxidation to NO2 under dry conditions.11 UV-Vis spectra of certain Cu-SSZ-13 samples (Si/Al = 13, Cu/Al = 0.45) following high temperature O2 treatment show features consistent with those for oxygen-bridged Cu dimers,48 and these features disappear upon reduction with CH4,18,50 implicating them as active sites for partial methane oxidation. The precise relationship between sample composition and treatment history, and the numbers and structures of Cu dimers or larger aggregates formed, however, remains less well resolved than such relationships for monomeric Cu sites in Cu-SSZ-13.
Here, we report UV-Vis spectra of model Cu-SSZ-13 zeolites prepared to contain predominantly Z2Cu or ZuOH sites, by virtue of their different framework Al arrangements and elemental compositions. We use supercell time-dependent DFT (TD-DFT) calculations to correlate observed UV-Vis spectral features with specific Cu motifs. We find that spectra computed for single, static, minimum energy structures are in poor agreement with experimental observation, because Cu ion dynamics have a significant impact on computed spectral features even at ambient temperature. We construct synthetic spectra by averaging over configurations visited during finite-temperature ab initio molecular dynamics (AIMD) simulations and show that these dynamically averaged spectra correspond closely with experimental observation. Further, experimental and simulated spectra are compared to identify features associated with a confounding subset of Cu dimers or larger aggregates in samples prepared to contain predominantly [CuOH]+ species. These results resolve several inconsistencies in spectral and site assignments reported in Cu-exchanged zeolites.
The Cu2+ ions in this zeolite sample are associated with ensembles of two Al centers separated by two or one intervening Si tetrahedral (T-) sites in the same six-membered ring (6MR), which we term “para” and “meta” respectively. We used a triclinic 12 T-site SSZ-13 supercell described elsewhere11,66 to represent each ensemble (Fig. 2). In each case, a single Cu ion was placed within the 6MR and the structure annealed at 673 K for 150 ps using thermostated AIMD (computational details in ESI Section S1†). 400 equally spaced configurations were extracted from the trajectories and relaxed. In each Al ensemble, all configurations relaxed to one of three energy minima shown in Fig. 2a and e. These three minima differ in the combination of Al-adjacent and non-Al-adjacent framework oxygen (Of) that comprise the first Cu coordination sphere. The framework distorts to accommodate these different Cu-containing minima, behavior consistent with structural distortions reported previously in calculations of metal-exchanged MFI,67,68 MOR,67,69 and FER,70 and inferred from the appearance of two T–O–T deformation bands (900, 950 cm−1) in DRIFTS spectra after Cu exchange into SSZ-13.71 Despite these structural differences, the three para configurations differ in energy by less than 5 and meta by less than 20 kJ mol−1 (Fig. 2a, e, and also ESI Table S1†). The lowest-energy para and meta configurations differ in absolute energy by 21 kJ mol−1 (ESI Table S1†).
We performed additional AIMD at 300 K to gain insight into variations in Cu coordination environment at finite temperature38,72 that might influence the observed spectra. Fig. 2b reports histograms of distances between Cu and each of the six 6MR Of, collected at 0.6 fs intervals over the 150 ps simulation of para Z2Cu. Distances segregate into two groups centered at 2.1 and 3.3 Å, corresponding to Cu-coordinated and free Of, each group having widths >0.5 Å (Table S2†) that arise from finite temperature fluctuations of the lattice and Cu. The unimodal O1, O2, and O3 and bimodal O4, O5, and O6 distributions are due to transitions between the three different minimum energy configurations of Fig. 2a. Inspection of the trajectory shows that transitions occur by extension of the four Cu–Of bonds, distortion of the lattice, and relaxation into an adjacent minimum. We used these observations to categorize each AIMD frame into one of the three minima or into an intermediate state (example structure in ESI Fig. S2†), based on the identity and number of Of within 2.6 Å of Cu, chosen to represent the upper bound of a Cu–O coordination and shown in the pie chart inset to Fig. 2b. All three minima are visited, and the fractions of time spent in each is generally consistent with the relative energies of the corresponding minima. A non-negligible fraction of time is also spent outside any minimum.
Analogous results for meta Z2Cu are shown in Fig. 2f. Again, Cu–Of distances segregate into the same two groups, and the aggregate histogram of all Cu–Of distances have identical means and standard deviations in the para and meta cases. The individual Cu–Of histograms are all unimodal. The large energy difference between minima guarantees that meta Z2Cu remains in the lowest energy configuration throughout the simulation.
We used TD-DFT to compute frequency-dependent dielectric tensors and corresponding optical absorption spectra of the six minima. The computational details and codes for the VASP inputs and subsequent analysis are provided in ESI Section S1.2† and also on the external Zenodo repository (DOI: 10.5281/zenodo.1473128). Computed spectra are shown in Fig. 2c and g, reported in arbitrary K–M units. All six spectra exhibit features in the d–d and LMCT regions not evident in the experimental spectrum in Fig. 1a. Coordinatively similar (as measured from Cu–O distances and O–Cu–O angles) para minima 1 and 3 and meta minimum 2 exhibit equivalent spectra. Absolute intensities are greatest for lowest symmetry and least for highest symmetry minima.73 Neither any individual spectrum nor a Boltzmann weighting of all spectra at 300 K (shown in ESI Fig. S3†) recovers the experimental spectrum in Fig. 1a.
To simulate the effects of these geometric variations on observed spectra, we computed the absorption spectra of 400 equally spaced snapshots from the 300 K AIMD trajectories (ESI Fig. S4a (para) and b (meta)†). Individual spectra are sensitive to local structure. The d–d transitions shift generally to higher frequency with decreasing mean Cu–Of distance (ESI Fig. S5†), consistent with behavior expected from ligand field arguments. The LMCT features do not simply correlate with the Cu–Of distances. Fig. 2d and h show the results of averaging increasing numbers of spectra computed from configurations extracted with equal spacing along the AIMD trajectories. Sharp features in both the d–d and LMCT regions become broadened upon averaging an increasing number of spectra from 1 to 200 structures and converge at approximately 200 structures, as evidenced by the small changes resulting from further averaging up to 400 structures. In contrast to spectra computed from the minimum energy structures, the final averaged meta and para UV-Vis spectra are indistinguishable and consistent with experimental observations in Fig. 1a.
After Cu2+ ion exchange, each model ZCuOH sample was treated in flowing oxygen at 673 K (20% O2, balance He) for 120 min (details in ESI Section S2.2†). UV-Vis spectra of these Cu-SSZ-13 samples collected at 300 K are shown in Fig. 1b and c. Spectra of both samples show absorbance features in the 8000 to 22000 cm−1 region that are centered around ∼ 11059, 13593, 16379, and 20077 cm−1, and a shoulder in the 24000 to 30000 cm−1 range, and these features are higher in intensity for the sample with higher Cu content. These spectra are similar to those reported following similar pretreatments of Cu-SSZ-13 materials that are expected to contain predominantly ZCuOH species,18,48,50 by virtue of the Na+-free synthesis methods used to prepare the parent SSZ-13 sample. In contrast, these spectra are markedly different from those reported on materials expected to only contain Z2Cu species (Korhonen et al.6 and Fig. 1a). The four d–d transitions have different relative intensities in the two Cu-SSZ-13 samples shown in Fig. 1b and c. Literature Cu-SSZ-13 samples prepared to contain ZCuOH sites and exposed to the same O2 pre-treatment also share the same four d–d transitions but again with different relative intensities.18,48,50 We conclude that a mononuclear ZCuOH species cannot be solely responsible for the quadruplet feature. The sample-dependent variation suggests the presence of additional multinuclear ZCuOH-derived species with structures and populations that depend on synthesis, treatment and composition.
Da Costa et al.15 reported that CO reduces multinuclear Cu-oxo species in Cu-ZSM-5 to isolated Cu+ (d10) ions that do not exhibit d–d transitions. Similarly, we hypothesize that multinuclear Cu-oxo species present in Cu-SSZ-13 samples after treatment in O2 at 673 K will be reduced by CO at 523 K, leaving behind only isolated ZCuOH species and any residual Z2Cu sites. Model Z2Cu and ZCuOH samples were held in a flowing stream of 5% CO at 523 K until no further changes in UV-Vis spectra were observed (details in ESI Section S2.4†), prior to sealing the UV-Vis cell and cooling to 300 K to record the spectra shown in Fig. 1, an approach similar to that applied by Ipek et al. to Cu-SSZ-13 samples containing mixtures of Z2Cu and ZCuOH sites.18 As expected, no changes were observed to the d–d transition region in the spectrum of the Z2Cu sample upon CO exposure (Fig. 1a). In sharp contrast, the d–d features at 16379 and 20077 cm−1 and LMCT transition at 27000 cm−1 in the spectra of both ZCuOH samples (Fig. 1b and c) disappeared after exposure to CO, and features at 11059 and 13593 cm−1 were shifted to 11350 and 13000 cm−1 and decrease markedly in absorbance. Despite differences in the d–d quadruplet feature intensity that are detectable after high temperature O2 treatment, the d–d transition features of both ZCuOH samples become similar after CO treatment. These findings indicate that not all Cu2+ sites in Cu-SSZ-13 are reducible to Cu+ in the presence of CO, that the Cu2+ sites remaining after CO reduction are similar for both samples (Fig. 1b and c, red), and that these signatures are of isolated ZCuOH sites.
We used the same triclinic supercell to describe a [CuOH]+ ion-exchanged near an isolated Al. Each T-site in the chabazite lattice is common to two 8MR, one 6MR, and three 4MR. We used 473 K AIMD and geometry optimizations to compare the energies of the [CuOH]+ ion in each of these orientations. The two 8MR orientations are isoenergetic and the Cu–X (X = Si, Al, O) radial distribution function (RDF) computed from their AIMD trajectories are identical (ESI Fig. S6†). From a nudged elastic band calculation, the two 8MR minima are separated by a 63 kJ mol−1 barrier (ESI Fig. S7†). Similar calculations with the [CuOH]+ ion directed into a 6MR and 4MR result in configurations 15 and 45 kJ mol−1 higher in energy. We thus expect a [CuOH]+ ion to adopt and remain in one of the 8MR orientations at typical conditions of observation here.
Again to explore the consequence of ion dynamics on spectroscopy, we performed additional AIMD simulations at 300 K for 150 ps on a [CuOH]+ ion in one of the 8MR orientations. During the course of the simulation the Cu ion remained coordinated to the same two Of, bond distances fluctuated, and the OH ligand rotated between Cu–OH rotational conformers twice. Fig. 3b reports histograms of the two Cu–Of and Cu–OH distances. The Cu–OH bond is shorter and has a narrower distribution than the Cu–Of bond. The Cu–Of mean distances are slightly shorter than those from the Z2Cu simulations while the standard deviations are the same as the Z2Cu trajectories (ESI Table S2†). Thus, the coordination environment around ZCuOH varies less than Z2Cu. The inset to Fig. 3b reports the fraction of the trajectory spent in each of the two rotational conformations.
The 8MR [CuOH]+ ion can exist in one of two rotational conformers that differ in energy by 6 kJ mol−1 and are distinguished by whether the OH ligand points into or out of the 8MR (Fig. 3a). Fig. 3c reports the computed UV-Vis spectra of a relaxed 8MR [CuOH]+ ion; each conformer yields a spectrum with two equivalent sharp features in the d–d transition region and a single sharp LMCT band. Predicted ZCuOH absorption intensities are less than either the Z2Cu para and meta spectra in Fig. 2c and g, consistent with the higher symmetry of ZCuOH and prior predictions that ZCuOH may have small or unobservable d–d transitions.49,74 However the two spectra in Fig. 3c for the two ZCuOH isomers are only in rough correspondence with the observed spectrum of the ZCuOH samples.
We computed the absorption spectra of 400 equally spaced structures chosen from the 300 K AIMD simulation; all computed spectra are overlaid in Fig. S4c.† Significant variations are present in the d–d (7000 to 14000 cm−1) and LMCT (30000 to 50000 cm−1) regions (ESI Fig. S6c†), with shorter mean Cu–O distances again correlating with shifts to higher frequency d–d transitions (ESI Fig. S5†). Fig. 3d reports spectra averaged over 1, 10, 25, 100, 200, and 400 structures. The two sharp d–d features at 8000 and 13000 cm−1 broaden and begin to merge, while the LMCT region converges to a peak spanning 30000 to 45000 cm−1. The averaged d–d and LMCT regions ≈1000 cm−1 are red-shifted but similar in shape to those observed after CO reduction of the ZCuOH samples (Fig. 1b and c). Further, the decrease in computed intensity of the d–d relative to LMCT bands in ZCuOH compared to Z2Cu models corresponds with experimental observation. These observations support both the assignment of the Fig. 1b and c spectra following CO treatment (red) to isolated ZCuOH and the conclusion that the quadruplet features after O2 treatment (black) cannot be solely assigned to ZCuOH but rather have contributions from multinuclear Cu complexes.
We performed 150 ps AIMD at 300 K on these two dimer structures in the 12-T-site supercell. In both trajectories the dimers remain roughly in the plane of the 8MR and retain coordination to the same bridging and framework O, unlike the more dynamic Z2Cu behavior described above. Both dimers vibrate internally and against the framework. Histograms of the Cu–O and Cu–Cu distances are shown in Fig. 4b and c. In ZCuOCuZ, Cu–Ob (bridging O) distances are systematically shorter and fluctuate less than Cu–Of. The Cu–Cu separation oscillates around 2.7 Å, and Cu–O–Cu angle varies from 90 to 115°. The Cu(OH)2 core of ZCu(OH)2CuZ remains essentially planar and tilted at an angle of ≈35° with respect to the 8MR plane during the AIMD (structure in ESI Fig. S12†). The Cu–Ob(H) and Cu–Of distances cover a similar range, and the Cu–Cu separation oscillates around 3 Å.
We used TD-DFT and spectral averaging methods identical to those above to simulate UV-Vis spectra of both dimers at 300 K. We observed computed spectra to be sensitive to the geometries of the dimers, similar to the monomer Z2Cu and ZCuOH. Fig. S10† shows spectra averaged over various numbers of snapshots; spectral averaging converge after ≈200 structures. Fig. 4d shows the spectra averaged over 400 snapshots. The spectrum of ZCu(OH)2CuZ structure (C) exhibits a broad and low intensity d–d feature around 12400 cm−1 and a LMCT band blue-shifted to beyond 50000 cm−1. In contrast, the spectrum of ZCuOCuZ structure (E) has two distinct d–d features around 8500 and 12400 cm−1 and an LMCT band edge that begins near 30000 cm−1. These two are clearly distinct from one another and from the computed spectrum of ZCuOH.
The spectroscopy of Cu dimers may be sensitive to Al proximity, through its influence on geometric and electronic structures. To test this effect, we constructed two additional ZCuOCuZ models with two Al placed third- and second-nearest-neighbor in an 8MR and introduced a Cu–O–Cu dimer so as to maintain Cu–O distances and a Cu–O–Cu angle similar to previous reports.11,18Fig. 4a shows the optimized structures F and G used to initiate subsequent dynamics. At 3NN, the ZCuOCuZ dimer is symmetrically coordinated to Of associated with Al; at 2NN, this symmetry is broken, although both Cu remain bound to two Of. During subsequent 300 K AIMD simulations the Cu ions retain their coordination; as shown in the histograms, Cu–O distances vary across the same ranges at all Al placements while Cu–Cu distances and Cu–O–Cu angles vary considerably with Al separation. While the computed spectra of the optimized structures are different, these differences largely disappear during averaging. As shown in Fig. 4d, averaged spectra have similar d–d features and differ only in the LMCT band edge position.
The Cu dimer spectroscopy could also be sensitive to geometric isomerism. To test this effect, we considered several examples of Cu dimers bridged by two O, a well known motif that exhibits several geometric isomers that are sensitive to Al separation.34,74–76Fig. 4a structures A, B, and D correspond to three different Al placements and three different isomers, all of which were obtained by geometry relaxations beginning from literature structures.11,18 A and B have triplet and D has a singlet ground states, consistent with earlier results.34,75 Computed spectra at the optimized geometries (ESI Fig. S10†) exhibit sharp and distinct peaks in both the d–d and LMCT regions. We performed AIMD on all three isomers; distance histograms collected during the simulations are shown in Fig. 4b and c. The dioxo dimer D is the least variable across the trajectory; dimers A and B sample much larger Cu–Of and Cu–Cu distances, respectively. During the finite temperature simulation, dimer A moves from a cis to a trans μ-peroxo orientation whereas the optimized geometry has a slightly twisted O–O linkage, resulting in smaller Cu–O–O angles (geometry comparison in ESI Fig. S13†). Fig. 4d reports computed spectra averaged over 400 snapshots. Spectra differ significantly in band location and intensity both in the d–d and LMCT regions.
UV-Vis spectra are thus sensitive to Cu dimer composition and structure and dynamics. Comparisons with the experimental spectra collected after 20% O2 treatment at 673 K in Fig. 1b and c are complicated by the ill-defined number and nuclearity of Cu species present in the samples. Nevertheless, we can make some useful connections. The relative intensities of the d–d transitions for some dimeric Cu species (in particular A, B, and E) are computed to be greater than that of monomeric ZCuOH, consistent with the observation of decreases in d–d peak intensity following CO reduction. Structures B, E, and F have features that roughly correspond with those observed at 11059, 13593, 16379, and 20077 cm−1 (Fig. 1b and c), but red-shifted by an amount similar to that found in the comparison of computed and observed ZCuOH spectra. Structures C and D contain features that are plausible candidates for the features observed at 16000 and 19000 cm−1. Structures A and B contain features that could account for the broad low energy LMCT shoulder from ≈22000 to 27000 cm−1 that disappears after the CO reduction treatment. All these results imply that the variations in the quadruplet feature in the d–d region of nominally ZCuOH samples shown in Fig. 3b and c are associated at least in part with the contributions of different numbers and/or types of dimers from sample to sample.
Discrimination within these sets is more challenging. Samples prepared to contain only Z2Cu species potentially contain two geometrically distinct sites distinguished by the location of the charge-compensating Al,80 and such sites are predicted here to have distinct UV-Vis spectra if computed at one minimum energy structure. Accounting for the finite temperature fluctuations in Cu location between local minima and associated fluctuations in Cu coordination environment, however, attenuates these differences, such that the two sites become spectroscopically indistinguishable. Similar factors affect the interpretation of XAS,79,81–84 EPR49,83,85 spectroscopies, and X-ray diffraction5,82,85,86 patterns, and caution should be applied in inferring Z2Cu geometric information by comparison of observations to predictions from single, minimum energy structures.
In samples in which Cu exchange is predominantly associated with isolated Al T-sites and contain a majority of ZCuOH sites, observed UV-Vis spectra contain features in the d–d and LMCT regions that cannot be accounted for by the spectrum computed of these sites.18,48,49,87 Strategies to directly prepare and characterize Cu-SSZ-13 samples that contain exclusively ZCuOH sites, either by exchanging dilute amounts of Cu or using higher silica-content SSZ-13 supports, are unlikely to be successful because of the difficulties of observing dilute ZCuOH and the presence of a confounding set of framework Al sites that can stabilize dimeric forms of Cu even at low Al density. Therefore, a strategy that combines synthetic efforts to bias formation of predominantly one Cu site type with treatments that selectively remove minority Cu species, is more likely to allow access to individual Cu site types.
The exact shapes and positions of the features depend on the zeolite composition and the precise pretreatment conditions, including temperature, pressure and duration of O2 exposure, all suggestive of additional Cu sites produced dynamically. Calculations here show that [CuOH]+ ions can move between adjacent 8MRs with an activation barrier of 63 kJ mol−1 (ESI Fig. S7†) and that suitably proximal ions can condense into dimers. This proposal is consistent with experimental observations of a decrease in the approximately 3660 cm−1 vibrational feature associated with the ZCuO–H stretch with increasing temperature,41 corresponding Raman shifts for multiple Cu2Ox motifs.18,19,55 It is also consistent with the observation of dry NO oxidation to NO2 on nominally ZCuOH-containing samples, ascribed to dimeric Cu sites.11,88 Because computed UV-Vis spectra of Cu dimers (Fig. 4) are sensitive to Al proximity, extra-lattice ligands, and to finite temperature structural fluctuations, assignment of specific spectroscopic features to individual types of dimeric Cu species is not possible based on results reported here.
The samples prepared to contain Z2Cu sites have spectral features that are invariant to reduction in CO. Literature results on similar samples find that they are insensitive to exposure to He, O2, or CH4.6,19 The four features observed in the d–d region of the ZCuOH samples following oxidizing treatment are similar to those reported previously in similar samples,18,48,50 but these bands do respond differently to subsequent reducing treatments. We find that 5% CO exposure at 523 K reproducibly preserves a portion of the d–d and LMCT features, which we assign to isolated ZCuOH sites. In contrast, exposure to CH4 at 473 K results only in a decrease in the lower energy portion (25000 to 38000 cm−1) of the LMCT band and disappearance of the 29000 cm−1 band.18,50,87 These results suggest that at the same temperature CH4 reduces a different population of CuxOyHz moieties to Cu+ than exposure to inert (He), and exposure to CO reduces all of the CuxOyHz observed to reduce in either CH4 or He.18 Spectral features we assign here to isolated ZCuOH moieties are observed in similar materials to persist after CH4 exposure.18,50 Precise identification of the Cu dimer sites responsible for CH4 activation under different conditions remains an important challenge for experiment and computation.
These results highlight the potential and the practical challenges of developing correlations between observed spectroscopy and the contributions of various Cu ion exchange sites and motifs to observed chemical reactivity. They highlight that precise characterization of active sites in this and similar systems demands a careful integration of chemical and spectroscopic interrogation with computational models that account for the structural and dynamical complexities of the materials.
Footnotes |
† Electronic supplementary information (ESI) available. See DOI: 10.1039/c8sc05056b |
‡ Contributed equally to this work. |
This journal is © The Royal Society of Chemistry 2019 |