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February 11, 2026Small Methods0 citations

Multi‐Atom Catalysts: Structural Design, Electronic Modulation, and Synergistic Catalysis

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GYGege YangHCHairui CaiZYZhimao Yang

Key Points

  • The aim is to explore the structural and electronic intricacies of multi-atom catalysts to boost their catalytic performance.
  • Review of architectural diversity in atom cluster catalysts
  • Evaluation of electronic structure modulation strategies
  • Analysis of synergistic mechanisms in catalytic performance
  • Potential for enhanced catalytic performance due to interatomic synergy
  • Expanded reaction scope for complex chemical processes
  • Identification of challenges and future directions in catalyst design

Abstract

ABSTRACT Multi‐Atom catalysts (MACs) have emerged as a pioneering domain in heterogeneous catalysis, distinguished by their exceptional intrinsic characteristics. These catalysts not only preserve the atomic dispersion and superior atomic utilization efficiency characteristic of single‐atom catalysts, but also address their inherent limitations through enhanced metal loading capacity. Crucially, the interatomic synergy within the cluster facilitates the formation of more intricate and adaptable active sites, thereby potentially elevating catalytic performance and expanding reaction scope to more complex chemical processes. This comprehensive review systematically examines three fundamental aspects: (1) The architectural diversity of atom cluster catalysts; (2) Advanced strategies for electronic structure modulation, encompassing atomic interface engineering, coordination environment optimization, and substrate‐mediated regulation; (3) Synergistic mechanisms that transcend conventional linear scaling relationships and enable precise control over critical catalytic parameters. We further consolidate contemporary synthesis methodologies and cutting‐edge characterization techniques specifically tailored for these catalytic systems. Particular emphasis is placed on their transformative applications across electrocatalytic, photocatalytic, and thermocatalytic domains. The work concludes by outlining persistent challenges and future research directions in catalyst design principles, mechanistic elucidation through advanced characterizations, and practical implementation strategies. This systematic analysis provides theoretical guidance and methodological references for developing next‐generation high‐performance catalysts.

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Cite This Study

Yang et al. (2026) studied this question.

synapsesocial.com/papers/698c1c53267fb587c655eb4dhttps://doi.org/10.1002/smtd.202502368
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