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May 11, 2026Advanced Materials2 citations

The Emergence of Spin‐Enhanced Catalysis for CO 2 Conversion

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BSBojun ShiYYYantao YangBZBotao Zhang

Key Points

  • This review aims to explore the mechanisms and strategies of spin-enhanced catalysis for CO2 conversion.
  • Summarizes mechanisms of spin effects and reaction pathways in CO2 conversion.
  • Discusses spin catalysis strategies involving external and internal magnetic interactions.
  • Highlights characterization techniques to study spin-sensitive intermediates in reactions.
  • Acknowledges the potential of spin-dependent mechanisms in enhancing CO2 conversion yields.
  • Identifies challenges in designing effective spin catalysts and reactor engineering.
  • Suggests future research opportunities for practical applications in sustainable CO2 conversion.

Abstract

ABSTRACT Spin catalysis provides a new opportunity to overcome conventional performance limits in carbon dioxide (CO 2 ) conversion by exploiting spin‐dependent charge transfer and radical reaction pathways. A clear understanding of spin effects and effective strategies for spin regulation is therefore essential for advancing CO 2 conversion catalysis. This review briefly summarizes recent advances in the underlying mechanisms and a few representative examples of spin‐enhanced CO 2 conversion, highlighting their importance in steering CO 2 conversion toward high value‐added products. It begins with an introduction to spin‐dependent reaction pathways and spin regulation at catalytic active sites, followed by a discussion of emerging approaches for spin‐enhanced CO 2 conversion. Spin catalysis strategies based on external magnetic fields and internal magnetic interactions are presented, highlighting their roles in promoting photocatalytic and electrocatalytic CO 2 reduction toward diverse and value‐added products. Besides, in situ/operando characterization techniques are essential for exploring the underlying mechanisms of spin catalysis and tracking the spin‐sensitive reaction intermediates during CO 2 conversion. Finally, key challenges and future opportunities in the design of spin catalysts, as well as the reactor engineering for practical applications, are discussed, advancing the concept of spin catalysis for achieving sustainable CO 2 conversion.

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Cite This Study

Shi et al. (2026) studied this question.

synapsesocial.com/papers/6a01723a3a9f334c282725f2https://doi.org/10.1002/adma.73300
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