Alternating Metal‐Ligand Coordination Improves Electrocatalytic CO2Reduction by a Mononuclear Ru Catalyst**

Author:

Agarwala Hemlata12ORCID,Chen Xiaoyu3ORCID,Lyonnet Julien R.14ORCID,Johnson Ben A.12ORCID,Ahlquist Mårten3ORCID,Ott Sascha1ORCID

Affiliation:

1. Department of Chemistry - Ångström Laboratories Uppsala University Box 523 75120 Uppsala Sweden

2. Present address: Technical University of Munich (TUM) Campus Straubing for Biotechnology and Sustainability Uferstraße 53 94315 Straubing Germany

3. Department of Theoretical Chemistry and Biology School of Engineering Sciences in Chemistry Biotechnology and Health (CBH) KTH Royal Institute of Technology 10691 Stockholm Sweden

4. Present address: Institute of Chemical Research of Catalonia (ICIQ) The Barcelona Institute of Science and Technology 43007 Tarragona Spain

Abstract

AbstractMolecular electrocatalysts for CO2‐to‐CO conversion often operate at large overpotentials, due to the large barrier for C−O bond cleavage. Illustrated with ruthenium polypyridyl catalysts, we herein propose a mechanistic route that involves one metal center that acts as both Lewis base and Lewis acid at different stages of the catalytic cycle, by density functional theory in corroboration with experimental FTIR. The nucleophilic character of the Ru center manifests itself in the initial attack on CO2to form [Ru‐CO2]0, while its electrophilic character allows for the formation of a 5‐membered metallacyclic intermediate, [Ru‐CO2CO2]0,c, by addition of a second CO2molecule and intramolecular cyclization. The calculated activation barrier for C−O bond cleavage via the metallacycle is decreased by 34.9 kcal mol−1as compared to the non‐cyclic adduct in the two electron reduced state of complex1. Such metallacyclic intermediates in electrocatalytic CO2reduction offer a new design feature that can be implemented consciously in future catalyst designs.

Funder

Vetenskapsrådet

NordForsk

Knut och Alice Wallenbergs Stiftelse

Energimyndigheten

Publisher

Wiley

Subject

General Medicine

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