Ligand Isomerization Driven Electrocatalytic Switching

Author:

Kottaichamy Alagar Raja12ORCID,Nazrulla Mohammed Azeezulla3,Parmar Muskan1,Thimmappa Ravikumar1,Devendrachari Mruthyunjayachari Chattanahalli1,Vinod Chathakudath Prabhakaran4,Volokh Michael2,Kotresh Harish Makri Nimbegondi5,Shalom Menny2ORCID,Thotiyl Musthafa Ottakam1ORCID

Affiliation:

1. Indian Institute of Science Education and Research (IISER) Pune Dr. Homi Bhabha Road, Pashan Pune 411008 India

2. Department of Chemistry and Ilse Katz Institute for Nanoscale Science and Technology Ben-Gurion University of the Negev Beer-Sheva 8410501 Israel

3. Department of Materials Chemistry National Institute of Chemistry 1000 Ljubljana Slovenia

4. Catalysis and Inorganic Chemistry Division CSIR-NCL Pune 411008 India

5. Department of Chemistry Acharya Institute of Technology, Soldevanahalli Bangalore 560107 India

Abstract

AbstractThe prevailing view about molecular catalysts is that the central metal ion is responsible for the reaction mechanism and selectivity, whereas the ligands mainly affect the reaction kinetics. Here, we question this paradigm and show that ligands have a dramatic influence on the selectivity of the product. We show how even a seemingly small change in ligand isomerization sharply alters the selectivity of the well‐researched oxygen reduction reaction (ORR) Co phthalocyanine catalyst from an indirect 2e to a direct 4e pathway. Detailed analysis reveals that intramolecular hydrogen‐bond interactions in the ligand activate the catalytic Co, directing the oxygen binding and thus deciding the final product. The resulting catalyst is the first example of a Co‐based molecular catalyst catalyzing a direct 4e ORR via ligand isomerization, for which it shows an activity close to the benchmark Pt in an actual H2−O2 fuel cell. The effect of the ligand isomerism is demonstrated with different central metal ions, thus highlighting the generalizability of the findings and their potential to open new possibilities in the design of molecular catalysts.

Publisher

Wiley

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