Shannon E. 
            Cooney‡
          
        
        
       , 
      
        
          
            Eric 
            Schreiber‡
, 
      
        
          
            Eric 
            Schreiber‡
          
        
       , 
      
        
          
            William W. 
            Brennessel
, 
      
        
          
            William W. 
            Brennessel
          
        
       and 
      
        
          
            Ellen M. 
            Matson
 and 
      
        
          
            Ellen M. 
            Matson
          
        
       *
*
      
Department of Chemistry, University of Rochester, Rochester, NY 14627, USA. E-mail: matson@chem.rochester.edu
    
First published on 4th April 2023
Anionic dopants, such as O-atom vacancies, alter the thermochemical and kinetic parameters of proton coupled electron transfer (PCET) at metal oxide surfaces; understanding their impact(s) is essential for informed material design for efficient energy conversion processes. To circumvent challenges associated with studying extended solids, we employ polyoxovanadate–alkoxide clusters as atomically precise models of reducible metal oxide surfaces. In this work, we examine net hydrogen atom (H-atom) uptake to an oxygen deficient vanadium oxide assembly, [V6O6(MeCN)(OCH3)12]0. Addition of two H-atom equivalents to [V6O6(MeCN)(OCH3)12]0 results in formation of [V6O5(MeCN)(OH2)(OCH3)12]0. Assessment of the bond dissociation free energy of the O–H bonds of the resultant aquo moiety reveals that the presence of an O-atom defect weakens the O–H bond strength. Despite a decreased thermodynamic driving force for the reduction of [V6O6(MeCN)(OCH3)12]0, kinetic investigations show the rate of H-atom uptake at the cluster surface is ∼100× faster than its oxidized congener, [V6O7(OCH3)12]0. Electron density derived from the O-atom vacancy is shown to play an important role in influencing H-atom uptake at the cluster surface, lowering activation barriers for H-atom transfer.
In materials science, O-atom deficiencies are considered a form of anionic dopant (Fig. 1). Their presence increases carrier density within a material, as the lack of an oxide ligand necessitates the presence of a reduced metal center.10,11 Accordingly, the Fermi energy of materials possessing O-atom defects is often disparate from that of their oxidized congeners; increased electron density in the extended solid modifies the driving force of electron transfer.12 This change in effective reduction potential of the material has been demonstrated via theoretical calculations to result in dramatic differences in bond dissociation free energies, BDFE(O–H), of surface hydroxide moieties in these materials.13
Our research team is interested in understanding factors that influence PCET reactivity that yields net hydrogen atom (H-atom) uptake at the surface of a series of vanadium oxide assemblies.14–20 The polyoxovanadate–alkoxide (POV–alkoxide) clusters studied by our team possess bridging alkoxide ligands, blocking traditionally nucleophilic sites at the surface of molecular metal oxide assemblies that dictate their reactivity with protons in solution.20–28 In some cases, saturation of bridging sites by organic groups has been studied as a means to isolate reactivity of protons and H-atom equivalents to terminal oxide sites, resulting in the formation of an O-atom vacancy and water under appropriate reaction conditions.
One advantage to studying molecular systems as models for extended solids is the ability to manipulate the composition of the assemblies with atomic precision.19 Indeed, our team has demonstrated formation of a POV–alkoxide cluster with two O-atom defect sites.29 In that work, we established that surface O-atoms are removed sequentially from the cluster surface. Our ability to isolate and handle the “intermediate”, [V6O6(MeCN)(OCH3)12]0 ([V6O6(MeCN)]0), allows for investigation of the impact embedded O-atom defects have on PCET in oxygen-deficient metal oxide assemblies.
Herein, we report the synthesis of two reduced forms of POV–alkoxide clusters with water ligated to surface of the assembly (Fig. 1). [V6O6(OH2)(OCH3)12]0 ([V6O6(OH2)]0) and [V6O5((MeCN)(OH2)(OCH3)12]0 ([V6O5(MeCN)(OH2)]0) are accessed via net multi H-atom transfer (HAT) to the fully oxygenated, neutral POV–alkoxide cluster, [V6O7(OCH3)12]0 ([V6O7]0), in tetrahydrofuran (THF). When HAT is performed in THF, the aquo ligand generated via PCET remains coordinated to the reduced VIII ion(s). This distinct attribute allows for experimental assessment of the BDFE(O–H)avg of the aquo O–H bonds. Analysis of the kinetics of net H-atom uptake reveals that while the mechanism of PCET proceeds via a concerted pathway in both examples, the presence of an O-atom defect accelerates the rate of net H-atom uptake by two orders of magnitude. Overall, this study reveals the impact O-atom defects have on PCET at metal oxides, providing insight into alterations of structural parameters that impact the reactivity of the surface with relevance to H-atom transfer chemistry.
|  | ||
| Scheme 1 Synthesis of O-atom vacancies in POV–alkoxide clusters via net H-atom uptake in MeCN; formation of [V6O6(MeCN)]0 and [V6O5(MeCN)2]0. | ||
Formation of [V6O5(MeCN)2]0 is similarly possible from the oxygen-deficient POV–alkoxide starting material, [V6O6(MeCN)]0. Addition of 1 equiv. of H2Phen to [V6O6(MeCN)]0 results in an instantaneous colour change from brown to red (Scheme 1). Analysis of the product distribution via1H NMR spectroscopy confirms formation of the di-vacant POV–alkoxide cluster, [V6O5(MeCN)2]0 and Phen (Fig. S2;† see Experimental section for additional details).
To understand the impact of an O-atom vacancy on the thermodynamics of H-atom uptake and transfer in POV–alkoxide clusters, we performed a series of equilibrium studies to determine BDFE(O–H)avg of surface aquo moieties. Previous work from our group has demonstrated that addition of H-atom transfer reagents to calix[4]arene-substituted POV–alkoxide clusters in tetrahydrofuran (THF) results in retention of the aquo ligand at the surface of the assembly.15 We anticipate that similar stabilization of the surface aquo should occur in this system; therefore, all in situ equilibrium experiments reported here were conducted in THF-d8.
Confirmation of H-atom installation and aquo-stabilization at the surface of the cluster was obtained through stoichiometric reactions with the parent POV–alkoxide cluster in THF. Exposure of [V6O7]0 to 1 equiv. of hydrazobenzene (Hydz, BDFE(N–H)avg = 60.4 kcal mol−1) in THF results in a rapid colour change from green to brown.15 The 1H NMR spectrum of the product in THF-d8 reveals a reduction in symmetry of the vanadium-containing product (Oh → C4v) in analogy to previous results on V![[double bond, length as m-dash]](https://www.rsc.org/images/entities/char_e001.gif) O bond reduction in POV–alkoxides (Fig. S3†).16,32 The three signals observed in the 1H NMR spectrum of the product are slightly shifted (29.6, 16.2, −11.5 ppm) in comparison with the O-atom deficient analogue bearing a MeCN ligand (29.5, 15.7, −12.1 ppm; Fig. S4†). Analysis of the crude reaction mixture did not indicate formation of water, in contrast to results obtained previously in PCET reactions to POV–alkoxides in MeCN (Fig. S4†). This suggests that the aquo moiety formed upon addition of 2 H-atom equivalents to the V
O bond reduction in POV–alkoxides (Fig. S3†).16,32 The three signals observed in the 1H NMR spectrum of the product are slightly shifted (29.6, 16.2, −11.5 ppm) in comparison with the O-atom deficient analogue bearing a MeCN ligand (29.5, 15.7, −12.1 ppm; Fig. S4†). Analysis of the crude reaction mixture did not indicate formation of water, in contrast to results obtained previously in PCET reactions to POV–alkoxides in MeCN (Fig. S4†). This suggests that the aquo moiety formed upon addition of 2 H-atom equivalents to the V![[double bond, length as m-dash]](https://www.rsc.org/images/entities/char_e001.gif) O site remains coordinated to the surface of the cluster. Additional support for the formation of the aquo adduct, [V6O6(OH2)]0, was obtained from elemental analysis.
O site remains coordinated to the surface of the cluster. Additional support for the formation of the aquo adduct, [V6O6(OH2)]0, was obtained from elemental analysis.
Recrystallization of the reduced POV–alkoxide was achieved by vapor diffusion of pentane directly into the reaction medium. The resultant crystals were suitable for analysis via single crystal X-ray diffraction (Fig. 3, and Table 1; see Table S1† for crystallographic parameters). Refinement of the data confirmed the identity of the reduced assembly to be the anticipated aquo-bound product, [V6O6(OH2)]0. The V1–O1 bond distance of 2.0671(19) Å is significantly elongated from that of the starting material, [V6O7]0 (V![[double bond, length as m-dash]](https://www.rsc.org/images/entities/char_e001.gif) Ot = 1.60 Å33), and consistent with V–O distances reported for vanadium(III) aquo complexes (1.967(3)–2.086(2) Å).15,34,35 In particular, the V1–O1 distance resembles that reported by our research group for the calix[4]arene-substituted POV–alkoxide cluster featuring an aquo ligand, [(calix)V6O5(OH2)(MeCN)(OCH3)8]0 (V(III)-O(aquo) = 2.052(2) Å).15 Further supporting our assignment of the aquo ligand are the identification of two THF molecules which serve as H-bond acceptors based on their orientation and proximity to the corresponding terminal O-atom (O1⋯O(THF) = 2.640(14), 2.700(3) Å; O1–Hn⋯O(THF) = 168(4), 175(5)°, n = 1A, 1B).
Ot = 1.60 Å33), and consistent with V–O distances reported for vanadium(III) aquo complexes (1.967(3)–2.086(2) Å).15,34,35 In particular, the V1–O1 distance resembles that reported by our research group for the calix[4]arene-substituted POV–alkoxide cluster featuring an aquo ligand, [(calix)V6O5(OH2)(MeCN)(OCH3)8]0 (V(III)-O(aquo) = 2.052(2) Å).15 Further supporting our assignment of the aquo ligand are the identification of two THF molecules which serve as H-bond acceptors based on their orientation and proximity to the corresponding terminal O-atom (O1⋯O(THF) = 2.640(14), 2.700(3) Å; O1–Hn⋯O(THF) = 168(4), 175(5)°, n = 1A, 1B).
| Bond | [V6O6(OH2)]0 | [V6O7]0 | 
|---|---|---|
| V1–O1 | 2.0671(19) Å | — | 
| V1–Oc | 2.1158(16) Å | — | 
| V ![[double bond, length as m-dash]](https://www.rsc.org/images/entities/char_e001.gif) Ot (avg) | 1.5998 Å | 1.60 Å | 
| V–Oc (avg) | 2.3177 Å | 2.28 Å | 
| O1⋯O(THF) | 2.640(14), 2.700(3) Å | — | 
| O1–Hn⋯O(THF) | 168(4), 175(5)° | — | 
The formal transfer of two H-atom equivalents to the surface of [V6O7]0 results in the reduction of the vanadium oxide core (VIV4VV2 → VIIIVIV4VV). Fortunately, within the unit cell of [V6O6(OH2)]0, all V centres are located in general positions, providing an opportunity to interrogate the electronic structure of the cluster using bond valence sum calculations (Table S2†). Indeed, the oxidation state distribution of the reduced complex was found to be VIIIVIV4VV. We note that this formal assignment is relevant at low temperature (100 K) and in the solid state; in solution at elevated temperatures the VV centre is expected to be delocalized about the fully oxygenated vanadium centres. This is evidenced by the observation of an intervalence charge transfer (IVCT) band diagnostic of VIV → VV electron transfer in the near infrared region of the electronic absorption spectrum of [V6O6(OH2)]0 (Fig. S5†).
With confirmation that water is stabilized at the surface of [V6O6(OH2)]0, we next sought to determine the strength of these surface O–H bonds. Determination of the experimental BDFE(O–H)avg of the surface H-atoms of [V6O6(OH2)]0 was achieved by exposure of the fully-oxygenated cluster to a reductant that does not react quantitatively with the complex in THF (Scheme 2). The generation of an equilibrium state allows us to invoke a modified version of the Nernst equation to find the adjusted BDFE(E–H) for the reductant, which under equilibrium conditions would be equivalent to the analogous parameter for the reduced cluster (Eqn (1)). Such analysis has been employed for studying surface O–H bonds on nanocrystalline ceria by Mayer and co-workers, as well as reduced POV–alkoxides by our group.13,15,18 Equilibrium is reached after exposure of the cluster to various equivalents (0.5 to 2) of 1,4-dihydroxynaphthalene (H2Naphth; BDFE(O–H)avg: 62.6 kcal mol−1) for 7 days in THF-d8 (Fig. S6, and S7†).30 Using the concentrations of the reductant and its oxidized partner, 1,4-naphthoquinone (Naphth), a value of n = 2 for the two H-atom equivalents transferred from the substrate, alongside Eqn (1), we determined the BDFE(O–H)avg of [V6O6(OH2)]0 to be 62.3 ± 0.1 kcal mol−1 (Table S3†).
|  | (1) | 
|  | ||
| Scheme 2 Equilibrium reactions employed in the determination of BDFE(O–H)avg for (a) [V6O6(OH2)]0 and (b) [V6O5(MeCN)(OH2)]0. | ||
Next, we set out to determine the BDFE(O–H)avg of the aquo ligand bound to a second O-atom deficient site at the surface of the assembly (Scheme 2). Despite the quantitative transfer of the H-atoms from Hydz (BDFE(N–H)avg = 60.4 kcal mol−1)15,30 to [V6O7]0, exposure of this reductant to [V6O6(MeCN)]0 in THF-d8 results in only partial conversion to the di-vacant cluster, [V6O5(MeCN)(OH2)(OCH3)12]0 ([V6O5(MeCN)(OH2)]0) (Fig. S9†). After 15 days, the concentrations of Hydz and its oxidized counterpart, azobenzene (Azo) remain static, indicating the system has reached equilibrium (Fig. S10†). Measuring the respective concentrations of reduced and oxidized substrate at equilibrium, the BDFE(O–H)avg of the aquo ligand bound to [V6O5(MeCN)(OH2)]0 was determined to be 60.7 ± 0.1 kcal mol−1 (Table S4†).
The observed decrease in BDFE(O–H)avg from [V6O6(OH2)]0 to [V6O5(MeCN)(OH2)]0 highlights the impact of the oxidation state distribution of distal vanadium ions on the thermodynamics of PCET at the cluster surface. This is consistent with results published by Agapie and coworkers for a “Fe3Mn” cluster, in which electron-rich variants of these multimetallic compounds exhibit weak Mn(O–H) bond strengths in comparison to their oxidized derivatives.36 Our group has corroborated this trend, observing that the strength of surface O–H bonds located at both terminal and bridging positions of Lindqvist-type POV–alkoxide clusters is dependent on the degree of reduction of the constituent metal ions; in all examples, reduced forms of the vanadium oxide assemblies possess the lowest BDFE(O–H) values.14,16,20 The influence of oxidation state of metal centres in multimetallic configurations on the thermodynamics of PCET is also observed in nanocrystalline metal oxides, as shown in recent reporting from Mayer and coworkers.13
To evaluate our hypothesis, a series of kinetic analyses were performed in which electronic absorption spectroscopy was used to monitor cluster reduction. This approach leverages the differentiated spectra of [V6O6(MeCN)]0 and [V6O5(MeCN)(OH2)]0. The more oxidized cluster, [V6O6(MeCN)]0 (oxidation state distribution: VIIIVIV4VV) features an intervalence charge transfer (IVCT) band, corresponding to electron transfer between the VIV and VV ions in the core (λ = 900 nm (ε = 413 M−1 cm−1.29 The reduced species lacks VV ions (oxidation state distribution: VIII2VIV4), dramatically reducing its absorptivity at 900 nm (ε < 100 M−1 cm−1, Fig. S13, and S14†).29 As such, the change in absorbance at 900 nm was monitored upon addition of an excess of H2Phen to [V6O6(MeCN)]0 (Fig. S15–20,† see Experimental section for details). Fitting of the generated traces produces a linear plot when correlating the observed pseudo first-order rate constant, kobs to the reductant concentration (Fig. 4). This observation indicates that the rate-determining step is first order in both reductant and cluster (Eqn (2)). Notably, kinetic analyses on net H-atom uptake at the surface of the fully-oxygenated cluster, [V6O7]0, similarly reveal a second-order rate-limiting process.16 The analogous rate expressions provide an initial indication that both clusters undergo net H-atom uptake via similar mechanisms.
|  | (2) | 
In our previous study, the formation of an O-atom defect at [V6O7]0 by PCET was determined to proceed via two concerted proton–electron transfer (CPET) reactions.16 We thus hypothesized that a CPET mechanism is similarly operative for the reduction of [V6O6(MeCN)]0. Kinetic isotope effect (KIE) experiments, employing the deuterium-labelled reductant, D2Phen, reveal a substantial KIE (4.4). This finding disqualifies a potential electron transfer–proton transfer (ET–PT) mechanism (Fig. 4 and Table 2). This is supported by electrochemistry experiments, which found that the oxidation potential of H2Phen (E1/2 = −0.387 V vs. Fc+/0, Fig. S11†) is not sufficiently reducing to transfer an electron to [V6O6(MeCN)]0 (E1/2 = −0.646 V vs. Fc+/0, Fig. S12.†)
| [V6O6(OH2)]0 ![[thin space (1/6-em)]](https://www.rsc.org/images/entities/char_2009.gif) 16 | [V6O5(MeCN)(OH2)]0 | |
|---|---|---|
| BDFE(O–H)avg | 62.3 ± 0.1 kcal mol−1 | 60.7 ± 0.1 kcal mol−1 | 
| k PCET@298 K | 0.14 ± 0.05 M−1 s−1 | 19.6 ± 3.2 M−1 s−1 | 
| KIE | 2.1 | 4.4 | 
| ΔH‡ (kcal mol−1) | 7.8 ± 0.8 | 4.3 ± 1.2 | 
| ΔS‡ (cal mol−1 K−1) | −31.0 ± 3.3 | −33.9 ± 4.8 | 
| ΔG‡ (kcal mol−1) | 18.7 ± 1.7 | 14.4 ± 2.6 | 
The proton transfer–electron transfer (PT–ET) pathway is similarly eliminated due to the weak acidity of the organic substrate, as the deprotonation of a neutral amine is unlikely to occur in the absence of a strong base (e.g. Na metal).38 To determine the relative basicities of each reactive species, we employ the following equation popularized by Bordwell,39–41
| BDFE(E–H) = 1.37(pKa) + 23.06(E°) + CG | (3) | 
Using the established BDFE(N–H)avg of H2Phen in THF (59.2 kcal mol−1), the average reduction potential for 2e− reduction of Phen (−2.15 V vs. Fc+/0), and CG for THF (59.9 kcal mol−1), we can apply this function to find the average pKa for the protons bound to reduced [Phen]2− to be 35.6. Similarly, using the BDFE(O–H)avg of [V6O5(MeCN)(OH2)]0 from equilibrium experiments (60.7 ± 0.1 kcal mol−1), oxidation potentials of this compound (−0.325 V, 0.222 V vs. Fc+/0, Fig. S12†), and CG, we find the average pKa for the protonated intermediate of [V6O6(MeCN)]0 (“[V6O5(MeCN)(OH2)]2+”) to be 1.45. This indicates that the complex is a significantly weaker base than [Phen]2− and thus will not deprotonate H2Phen.
Additional evidence in support of a CPET mechanism is provided in the assessment of activation parameters obtained from variable temperature kinetics experiments. Construction of an Eyring plot allows for the determination of activation parameters for the rate-determining step of the PCET reaction (Fig. 5, and Table 2). We find that the activation entropy, ΔS‡, of net H-atom uptake reactions at the surface of [V6O7]0 and [V6O6(MeCN)]0 are similarly large in magnitude and negative in sign, while the enthalpic contributions to the overall activation barrier, ΔH‡, are comparatively small. These results suggest that the rate-determining step involves an inner-sphere process with a highly ordered transition state. Similar observations have been made in previous examples of net H-atom transfer reactivity invoked to occur through a CPET-type mechanism.14–16,18,20,42,43 Collectively, these findings support the hypothesis that generation of the aquo moiety in [V6O5(MeCN)(OH2)]0 occurs via a rate-determining CPET process.
With mechanistic insights in hand, we sought to evaluate how the O-atom defect site alters the rate of PCET to the cluster surface. The rate constant for the reduction of [V6O6(MeCN)]0 from H2Phen can be extrapolated from the Eyring plot at a given temperature, which was determined to be 19.6 ± 3.2 M−1 s−1 at 25 °C (Fig. 5 and Table 2). This corresponds with a 100-fold increase in reaction rate over that reported for [V6O7]0 at the same temperature (0.14 ± 0.05 M−1 s−1).16
The acceleration in rate of net H-atom uptake at [V6O6(MeCN)]0 is striking considering the reduction of thermodynamic driving force for PCET (smaller ΔBDFE(O–H), vide supra). To justify this observation, we considered the activation parameters derived from Eyring analysis (Table 2). As described above, the entropy of activation (ΔS‡) in both reactions are large, negative values. Our lab and others have shown that ΔS‡ values of this magnitude are consistent with a well-ordered intermediate, suggesting the existence of a hydrogen bonded complex between the H-atom donor and acceptor in the transition state.14–16,18,20,42,43 The observation of comparable values of ΔS‡ is unsurprising, as both transition states involve the preorganization of reductant and cluster in close proximity. However, in comparing the enthalpies of activation (ΔH‡) of H-atom transfer to fully oxygenated and O-atom deficient POV–alkoxide clusters, we note a significant discrepancy; while both values are consistent with previously reported CPET reactions to metal oxide surfaces, the small ΔH‡ associated with formation of [V6O5(MeCN)(OH2)]0 indicates that less energy is required for bond weakening processes relevant to the formation of the transition state.14–16,18,20,42,43
We attribute the reduction in ΔH‡ to the increased electron density in the core of the oxygen-deficient POV–alkoxide cluster, [V6O6(MeCN)]0. Injection of reducing equivalents into POV–alkoxide clusters has been previously shown to increase the basicity of terminal V![[double bond, length as m-dash]](https://www.rsc.org/images/entities/char_e001.gif) O units;44 similarly, the electron donor character of the O-deficient VIII centre should lead to greater nucleophilicity of the remaining oxygenated sites. Indeed, determination of the average pKa's of the corresponding acids (represented as “[V–OH2]2+” in the thermochemical square scheme (Scheme 3)) of [V6O7]0 (pKa = −1.98) and [V6O6(MeCN)]0 (pKa = 1.45) found that the defect-containing species was more basic than its fully oxygenated congener (Table S6†). The rate of CPET has been shown in several reports to be tuneable with the pKa of the proton or H-atom acceptor, with more basic acceptors producing accelerated reaction rates.45–48 This is due to the influence of pKa on ΔBDFE(E–H), as well as transition state thermodynamics. In a variety of cases, donor/acceptor pKa has been shown to correlate more strongly to PCET rate constants than ΔBDFE(E–H), describing an imbalanced transition state with more proton transfer character and an asynchronous CPET mechanism.47,49–55 An example from Hammes–Schiffer and coworkers describes the influence of proton transfer free energy
O units;44 similarly, the electron donor character of the O-deficient VIII centre should lead to greater nucleophilicity of the remaining oxygenated sites. Indeed, determination of the average pKa's of the corresponding acids (represented as “[V–OH2]2+” in the thermochemical square scheme (Scheme 3)) of [V6O7]0 (pKa = −1.98) and [V6O6(MeCN)]0 (pKa = 1.45) found that the defect-containing species was more basic than its fully oxygenated congener (Table S6†). The rate of CPET has been shown in several reports to be tuneable with the pKa of the proton or H-atom acceptor, with more basic acceptors producing accelerated reaction rates.45–48 This is due to the influence of pKa on ΔBDFE(E–H), as well as transition state thermodynamics. In a variety of cases, donor/acceptor pKa has been shown to correlate more strongly to PCET rate constants than ΔBDFE(E–H), describing an imbalanced transition state with more proton transfer character and an asynchronous CPET mechanism.47,49–55 An example from Hammes–Schiffer and coworkers describes the influence of proton transfer free energy  , related to pKa, on CPET in fluorenyl-benzoates, revealing that this thermodynamic parameter contributes to the proton donor–acceptor distance in the transition state.56 By increasing the relative basicity of the acceptor, this distance is minimized, decreasing the energetic requirement to facilitate proton tunnelling. In the present study, the increased surface basicity of the O-deficient POV–alkoxide is then expected to produce an H-bond with H2Phen with lower energetic cost than its fully-oxygenated partner, supported by a lower ΔH‡. Therefore, despite the greater driving force exhibited for PCET to [V6O7]0, the more basic surface of the O-atom deficient POV–alkoxide results in an accelerated rate of PCET to [V6O6(MeCN)]0.
, related to pKa, on CPET in fluorenyl-benzoates, revealing that this thermodynamic parameter contributes to the proton donor–acceptor distance in the transition state.56 By increasing the relative basicity of the acceptor, this distance is minimized, decreasing the energetic requirement to facilitate proton tunnelling. In the present study, the increased surface basicity of the O-deficient POV–alkoxide is then expected to produce an H-bond with H2Phen with lower energetic cost than its fully-oxygenated partner, supported by a lower ΔH‡. Therefore, despite the greater driving force exhibited for PCET to [V6O7]0, the more basic surface of the O-atom deficient POV–alkoxide results in an accelerated rate of PCET to [V6O6(MeCN)]0.
![[double bond, length as m-dash]](https://www.rsc.org/images/entities/char_e001.gif) O moieties of [V6O6(MeCN)]0 and allows for facile access to the transition state. Taken together, this work reveals how doping can serve to tune PCET processes at molecular metal oxides, furthering our understanding of these systems and providing new perspectives on analogous processes in reducible metal oxide materials.
O moieties of [V6O6(MeCN)]0 and allows for facile access to the transition state. Taken together, this work reveals how doping can serve to tune PCET processes at molecular metal oxides, furthering our understanding of these systems and providing new perspectives on analogous processes in reducible metal oxide materials.
    
    
      1H NMR spectra were recorded at 500 MHz on a Bruker DPX500 spectrometer locked on the signal of deuterated solvents. All chemical shifts were reported relative to the peak of the residual H signal in deuterated solvents. CD3CN and THF-d8 were purchased from Cambridge Isotope Laboratories, degassed by three freeze–pump–thaw cycles, or received in a glass ampule, and stored over fully activated 3 Å molecular sieves. UV-Vis-NIR spectroscopy was collected using an Agilent Cary 6000i spectrophotometer at 21 °C and −35 °C. Samples were prepared in the drybox in MeCN or THF and added to airfree cuvettes and sealed prior to removing from the drybox. All molar absorptivity values were determined by averaging spectra collected in triplicate at different concentrations. Kinetics experiments were carried out on an Agilent Cary 60 UV-Vis-NIR spectrophotometer held at desired temperatures using an Unisoku CoolSpek UV cryostat.
Cyclic voltammetry (CV) was performed using a BioLogic SP 150 potentiostat/galvanostat and the EC-Lab software suite. Glassy carbon discs (3 mm, CH Instruments, USA) were used as working electrodes. Working electrodes were polished using a micro cloth pad and 0.05 μM alumina powder. Potentials recorded during CV were measured relative to a nonaqueous Ag/Ag+ reference electrode with 1 mM AgNO3 and 100 mM [nBu4N][PF6] in MeCN (BASi) and ultimately referenced against the Fc+/0 couple using an internal reference. A platinum wire served as the counter electrode. All experiments were carried out at room temperature inside a nitrogen-filled glove box (MBraun, USA). All CV measurements were iR compensated at 85% with impedance taken at 100 kHz using the ZIR tool included with the EC-Lab software. CV experiments were conducted at 100 mV s−1 on solutions of either 2 or 1 mM analyte and 200 mM [nBu4N][PF6] supporting electrolyte in THF.
A single crystal of [V6O6(OH2)]0 was placed onto a thin glass optical fibre and mounted on a Rigaku XtaLAB Synergy-S Dualflex diffractometer equipped with a HyPix-6000HE HPC area detector for data collection at 100.00(10) K. A preliminary set of cell constants and an orientation matrix were calculated from a small sampling of reflections.59 A short pre-experiment was run, from which an optimal data collection strategy was determined. The full data collection was carried out using a PhotonJet (Cu) X-ray source with frame times of 0.55 and 2.20 seconds and a detector distance of 34 mm. Series of frames were collected in 0.50° steps in ω at different 2θ, κ, and ϕ settings. After the intensity data were corrected for absorption, the final cell constants were calculated from the xyz centroids of 26![[thin space (1/6-em)]](https://www.rsc.org/images/entities/char_2009.gif) 024 strong reflections from the actual data collection after integration.39 See Table S1 (ESI†) for additional crystal and refinement information. The structure was solved using SHELXT60 and refined using SHELXL.61 The space group P
024 strong reflections from the actual data collection after integration.39 See Table S1 (ESI†) for additional crystal and refinement information. The structure was solved using SHELXT60 and refined using SHELXL.61 The space group P![[1 with combining macron]](https://www.rsc.org/images/entities/char_0031_0304.gif) was determined based on intensity statistics. All non-hydrogen atoms were refined with anisotropic displacement parameters. All other hydrogen atoms were placed in ideal positions and refined as riding atoms with relative isotropic displacement parameters. The final full matrix least squares refinement converged to R1 = 0.0360 (F2, I > 2σ(I)) and wR2 = 0.1030 (F2, all data). Elemental analysis was performed on a PerkinElmer 2400 Series II Analyzer, at the CENTC Elemental Analysis Facility, University of Rochester.
 was determined based on intensity statistics. All non-hydrogen atoms were refined with anisotropic displacement parameters. All other hydrogen atoms were placed in ideal positions and refined as riding atoms with relative isotropic displacement parameters. The final full matrix least squares refinement converged to R1 = 0.0360 (F2, I > 2σ(I)) and wR2 = 0.1030 (F2, all data). Elemental analysis was performed on a PerkinElmer 2400 Series II Analyzer, at the CENTC Elemental Analysis Facility, University of Rochester.
(Method B) A 20 mL scintillation vial was charged with [V6O6(MeCN)]0 (0.018 g, 0.022 mmol), H2Phen (0.005 g, 0.024 mmol, 1.1 eq.) and 6 mL of MeCN. The reaction was stirred 30 min to ensure completion and the solvent was removed under reduced pressure to yield a red solid. The solid was stirred in pentane (10 mL) for 30 min to remove phenazine byproduct. The solid was then extracted in MeCN and volatiles were removed under vacuum to yield [V6O5(MeCN)2]0 (0.031 g, 0.016 mmol, 73%) Characterization of the product, [V6O5(MeCN)2]0, matched that previously reported by our research group.29
Determination of the BDFE(O–H)avg of [V6O5(MeCN)(OH2)]0 was performed using reactions between [V6O6(MeCN)]0 and 1 equivalent of Hydz in triplicate. 207 μL of cluster stock solution (7.73 mM) and 115 μL of reductant (13.9 mM) in THF-d8 and 78 μL of THF-d8 were combined in a J. Young tube and sealed prior to removal from the glovebox for analysis. Reactions were allowed to equilibrate over 15 days at room temperature, tracking progress by 1H NMR (Fig. S9†). Upon equilibration, the relative concentrations of azobenzene (Azo) to Hydz were determined by using the integrations of resonances corresponding with each compound and normalizing for the number of protons each signal represents (Table S4†). Upon determination of [Hydz]/[Azo], the adjusted BDFE of the reductant was determined for each reaction as above, where BDFEHydz = 60.4 kcal mol−1![[thin space (1/6-em)]](https://www.rsc.org/images/entities/char_2009.gif) 30 and n = 2. Averaging the observed BDFEadj values finds the BDFE(O–H)avg of [V6O5(OH2)]0 to be 60.7 ± 0.1 kcal mol−1 (Table S4†).
30 and n = 2. Averaging the observed BDFEadj values finds the BDFE(O–H)avg of [V6O5(OH2)]0 to be 60.7 ± 0.1 kcal mol−1 (Table S4†).
| At = Af + (Ai − Af)e−kobst | 
The slope of the line, when held to a y-intercept of 0, of 52.99 (R2 = 0.9973), provides the experimentally determined rate constant, kPCET at −15 °C of 6.6 ± 0.3 M−1 s−1, which accounts for the two H-atoms from the H2Phen and four possible V![[double bond, length as m-dash]](https://www.rsc.org/images/entities/char_e001.gif) O reactive sites. To determine the kinetic isotope effect (KIE), analogous reactions were carried out at −15 °C using 3 mL samples of D2Phen solution between 3.75 and 10.1 mM, and 0.44 mL of cluster stock solution (5.14 mM) for a 0.75 mM final concentration (Fig. S20–24†). Experiments were repeated in triplicate. Similar treatment of the data produced a kPCET for the formation of deuterium-labelled species of 1.49 ± 0.05 M−1 s−1.
O reactive sites. To determine the kinetic isotope effect (KIE), analogous reactions were carried out at −15 °C using 3 mL samples of D2Phen solution between 3.75 and 10.1 mM, and 0.44 mL of cluster stock solution (5.14 mM) for a 0.75 mM final concentration (Fig. S20–24†). Experiments were repeated in triplicate. Similar treatment of the data produced a kPCET for the formation of deuterium-labelled species of 1.49 ± 0.05 M−1 s−1.
| ΔH‡ = −2273.5 × R | 
| ΔG‡ = ΔH‡ − TΔS‡. | 
![[double bond, length as m-dash]](https://www.rsc.org/images/entities/char_e001.gif) O Bond Cleavage in Polyoxovanadate Alkoxide Clusters, Inorg. Chem., 2019, 58, 10462 CrossRef CAS PubMed.
O Bond Cleavage in Polyoxovanadate Alkoxide Clusters, Inorg. Chem., 2019, 58, 10462 CrossRef CAS PubMed.| Footnotes | 
| † Electronic supplementary information (ESI) available: 1H NMR of complexes and reactions, X-ray crystal structure parameters, bond-valence sum calculations, and electronic absorption spectrum of [V6O6(OH2]0, and kinetic analyses for the reduction of [V6O6(MeCN)]0. CCDC 2234804. For ESI and crystallographic data in CIF or other electronic format see DOI: https://doi.org/10.1039/d3qi00129f | 
| ‡ These authors contributed equally to this work. | 
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