Chirality‐Induced Spin Selectivity Enables New Breakthrough in Electrochemical and Photoelectrochemical Reactions

Author:

Ma Sunihl1,Lee Hyungsoo2,Moon Jooho2ORCID

Affiliation:

1. Department of Chemical Engineering University of Michigan Ann Arbor MI 48109 USA

2. Department of Materials Science and Engineering Yonsei University 50 Yonsei‐ro Seodaemun‐gu Seoul 03722 Republic of Korea

Abstract

AbstractTo facilitate the transition from a carbon‐energy‐dependent society to a sustainable society, conventional engineering strategies, which encounter limitations associated with intrinsic material properties, should undergo the paradigm shift. From a theoretical viewpoint, the spin‐dependent feature of oxygen evolution reaction (OER) reveals the potential of a spin‐polarization strategy in enhancing the performance of electrochemical (EC) reactions. The chirality‐induced spin selectivity (CISS) phenomenon attracts unprecedented attention owing to its potential utility in achieving novel breakthroughs. This paper starts with the experimental results aimed at enhancing the efficiency of the spin‐dependent OER focusing on the EC system based on the CISS phenomenon. The applicability of spin‐polarization to EC system is verified through various analytical methodologies to clarify the theoretical groundwork and mechanisms underlying the spin‐dependent reaction pathway. The discussion is then extended to effective spin‐control strategies in photoelectrochemical system based on the CISS effect. Exploring the influence of spin‐state control on the kinetic and thermodynamic aspects, this perspective also discusses the effect of spin polarization induced by the CISS phenomenon on spin‐dependent OER. Lastly, future directions for enhancing the performance of spin‐dependent redox systems are discussed, including expansion to various chemical reactions and the development of materials with spin‐control capabilities.

Funder

Ministry of Science and ICT, South Korea

Yonsei University

National Research Foundation of Korea

Publisher

Wiley

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