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February 22, 2026Electrochimica Acta3 citationsOpen Access

High Entropy Materials in Electrocatalysis: A Critical Review of Structure–Property Understanding

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MMMelissa MarksUniversity of CopenhagenPGPéter GyenesUniversity of CopenhagenRPRebecca K. PittkowskiUniversity of Copenhagen

Key Points

  • The research aims to understand how the structure of high entropy materials influences their electrocatalytic properties.
  • Reviewed existing literature on high entropy materials in electrocatalysis.
  • Analyzed various characterization techniques used for these materials.
  • Examined key studies focusing on compositional screening and stability of high entropy electrocatalysts.
  • High entropy materials exhibit unique catalytic properties due to their complex structures.
  • Characterization techniques reveal challenges in analyzing multielement systems.
  • Identifying structure-property relationships is crucial for optimizing electrocatalyst performance.

Abstract

High entropy materials (HEMs) have emerged as a promising new class of electrocatalysts distinguished by their immense compositional flexibility and structural complexity, which can give rise to unprecedented catalytic properties and open new avenues for fundamental insight into catalysis. Realizing the potential of HEM electrocatalysts is dependent on building a deep understanding of structure-property relationships, based on nuanced characterization of both structural and electrochemical properties. This critical review navigates the current landscape of HEMs in electrocatalysis, exploring the evolving nomenclature and conceptual frameworks that shape how these materials are described and understood across the literature. We consider the diverse characterization techniques used to investigate the structure of HEMs, discussing the length scales and chemical contrasts they provide as well as the challenges associated with characterizing highly complex, multielement systems. Building on this foundation, we highlight key studies of HEMs in electrocatalysis, including those focused on screening the vast compositional space of HEMs to identify new electrocatalysts, or else examining the activity and stability of HEM electrocatalysts in detail, drawing insights into the factors that govern their performance. This critical review also emphasizes emerging research directions and strategies where advanced characterization and design approaches may help unlock the full potential of HEMs in electrocatalytic applications.

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Cite This Study

Marks et al. (2026) studied this question.

synapsesocial.com/papers/699a9cc6482488d673cd28adhttps://doi.org/10.1016/j.electacta.2026.148495
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