Benchmarking Semiempirical Methods To Compute Electrochemical Formal Potentials
Author(s) -
Rebecca L. Gieseking,
Mark A. Ratner,
George C. Schatz
Publication year - 2018
Publication title -
the journal of physical chemistry a
Language(s) - Uncategorized
Resource type - Journals
SCImago Journal Rank - 0.756
H-Index - 235
eISSN - 1520-5215
pISSN - 1089-5639
DOI - 10.1021/acs.jpca.8b05143
Subject(s) - mndo , molecule , density functional theory , electrochemistry , chemistry , computational chemistry , benchmark (surveying) , materials science , statistical physics , chemical physics , molecular physics , electrode , physics , quantum mechanics , geodesy , geography
Computational methods to predict and tune electrochemical redox potentials are important for the development of energy technologies. Here, we benchmark several semiempirical models to compute reduction potentials of organic molecules, comparing approaches based on (1) energy differences between the S 0 and one-electron-reduced D 0 states of the isolated molecules and (2) an orbital energy shift approach based on tuning the charge-transfer triplet energy of the Ag 20 -molecule complex; the second model enables explicit modeling of electrode-molecule interactions. For molecules in solution, the two models yield nearly identical results. Both PM7 and PM6 predict formal potentials with only a slight loss of accuracy compared to standard density functional theory models, and the results are robust across several choices of geometries and implicit solvent models. PM6 and PM7 show dramatically improved accuracy over older semiempirical Hamiltonians (MNDO, AM1, PM3, and INDO/S). However, our recently developed INDO parameters model the electronic properties of our Ag 20 model electrode much more accurately than does PM7. These results demonstrate the need for further development of semiempirical models to accurately model molecules on surfaces.
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