Quantification of the Electrostatic Effect on Redox Potential by Positive Charges in a Catalyst Microenvironment
Author(s) -
Natalia D. Loewen,
Santanu Pattanayak,
Rolfe H. Herber,
James C. Fettinger,
Louise A. Berben
Publication year - 2021
Publication title -
the journal of physical chemistry letters
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.563
H-Index - 203
ISSN - 1948-7185
DOI - 10.1021/acs.jpclett.1c00406
Subject(s) - electrocatalyst , redox , chemistry , electrochemistry , catalysis , chemical physics , electrostatics , kinetic energy , electrochemical potential , charged particle , electrode , inorganic chemistry , ion , organic chemistry , physics , quantum mechanics
Charged functional groups in the secondary coordination sphere (SCS) of a heterogeneous nanoparticle or homogeneous electrocatalyst are of growing interest due to enhancements in reactivity that derive from specific interactions that stabilize substrate binding or charged intermediates. At the same time, accurate benchmarking of electrocatalyst systems most often depends on the development of linear free-energy scaling relationships. However, the thermodynamic axis in those kinetic-thermodynamic correlations is most often obtained by a direct electrochemical measurement of the catalyst redox potential and might be influenced by electrostatic effects of a charged SCS. In this report, we systematically probe positive charges in a SCS and their electrostatic contributions to the electrocatalyst redox potential. A series of 11 iron carbonyl clusters modified with charged and uncharged ligands was probed, and a linear correlation between the ν CO absorption band energy and electrochemical redox potentials is observed except where the SCS is positively charged.
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