Reducing Systematic Uncertainty in Computed Redox Potentials for Aqueous Transition-Metal-Substituted Polyoxotungstates

Journal Article (2023)
Author(s)

Jake A. Thompson (University of Glasgow)

Rebeca Gonzalez-Cabaleiro (TU Delft - BT/Environmental Biotechnology)

Laia Vilà-Nadal (University of Glasgow)

Research Group
BT/Environmental Biotechnology
Copyright
© 2023 Jake A. Thompson, R. Gonzalez Cabaleiro, Laia Vilà-Nadal
DOI related publication
https://doi.org/10.1021/acs.inorgchem.3c01115
More Info
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Publication Year
2023
Language
English
Copyright
© 2023 Jake A. Thompson, R. Gonzalez Cabaleiro, Laia Vilà-Nadal
Research Group
BT/Environmental Biotechnology
Issue number
31
Volume number
62
Pages (from-to)
12260-12271
Reuse Rights

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Abstract

Polyoxometalates have attracted significant interest owing to their structural diversity, redox stability, and functionality at the nanoscale. In this work, density functional theory calculations have been employed to systematically study the accuracy of various exchange-correlation functionals in reproducing experimental redox potentials, U0Red in [PW11M(H2O)O39]q- M = Mn(III/II), Fe(III/II), Co(III/II), and Ru(III/II). U0Red calculations for [PW11M(H2O)O39]q- were calculated using a conductor-like screening model to neutralize the charge in the cluster. We explicitly located K+ counterions which induced positive shifting of potentials by > 500 mV. This approximation improved the reproduction of redox potentials for Kx[XW11M(H2O)O39]q-x M = Mn(III/II)/Co(III/II). However, uncertainties in U0Red for Kx[PW11M(H2O)O39]q-x M = Fe(III/II)/Ru(III/II) were observed because of the over-stabilization of the ion-pairs. Hybrid functionals exceeding 25% Hartree-Fock exchange are not recommended because of large uncertainties in ΔU0Red attributed to exaggerated proximity of the ion-pairs. Our results emphasize that understanding the nature of the electrode and electrolyte environment is essential to obtain a reasonable agreement between theoretical and experimental results.