Dynamic Binding of Alkali‐Metal Ions in a Metalloporphyrin Cage: Impact on Redox Catalysis
Abstract
ABSTRACT The influence of local electrostatic environments on catalytic reactivity is well established in enzymatic systems, but their systematic implementation in synthetic catalysts remains limited. Here, we investigate the dynamic binding of alkali‐metal cations to a cobalt porphyrin cage complex as a strategy to modulate its redox properties and catalytic activity toward CO 2 reduction (CO 2 RR). Electrochemical studies reveal that the Co 1 + → Co 0 redox potential is highly sensitive to the identity of the electrolyte cation, with K + and Cs + inducing the largest positive shifts (236 and 225 mV, respectively), resulting in substantial decreases in CO 2 RR overpotential. In contrast, Li + , Na + , and Ca 2 + produce only minor or moderate effects. Molecular dynamics simulations rationalize these observations in terms of binding mode and dynamics: Li + remains fully solvated, Na + interacts weakly with the cage, while K + and Cs + bind specifically and symmetrically to the ether‐functionalized cage walls, with oxidation‐state‐dependent occupancy. These findings illustrate how alkali‐metal ion coordination can be harnessed to modulate molecular electrocatalysts and guide the design of redox‐tunable systems.
Article Details
Authors (5)
Eva Pluhařová
J. Heyrovský Institute of Physical Chemistry v.v.i. The Czech Academy of Sciences Prague Czech Republic
Adarsh Koovakattil Surendran
Department of Spectroscopy and Catalysis, Institute for Molecules and Materials, Radboud University, Heyendaalseweg 135, 6525 AJ Nijmegen, The Netherlands
Karolína Fárníková
J. Heyrovský Institute of Physical Chemistry v.v.i. The Czech Academy of Sciences Prague Czech Republic
Jana Roithová
Institute for Molecules and Materials, Faculty of Science, Radboud University, Heyendaalseweg 135, Nijmegen 6525 AJ, The Netherlands
Evert Jan Meijer
Van ’t Hoff Institute for Molecular Sciences and Amsterdam Center for Multiscale Modelling University of Amsterdam Amsterdam The Netherlands