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December 6, 2025Nature Communications38 citationsOpen Access

Breaking the symmetry of high-entropy alloy surfaces for compressively strain-tuned oxygen reduction reaction

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LHLin HeLQLongyu Qiu

Key Points

  • Optimal tuning of surface stress in high-entropy alloys enhances oxygen reduction reaction efficiency.
  • Achieved mass activity of 0.99 A mg-1 platinum group metal on HEA nanorings at 0.95 V.
  • Investigation reveals that compressive strain lowers d-band center, improving oxygen intermediate desorption.
  • Findings indicate potential for designing nanocatalysts with superior electrocatalytic performance.

Abstract

A largely unexplored approach for optimizing surface strains on terrace-type catalysts is the break of atomic symmetry to release surface stress. The key challenge lies in how to implement this approach into practical nanocatalysts, in particular the promising high-entropy alloys (HEAs). Herein, we design and synthesize a series of HEA nanorings (NRs) with abundant terrace-type defects for oxygen reduction reaction (ORR) electrocatalysis. The asymmetry-triggered release of surface stress enables the modulation of compressive strain for optimizing the electronic structure. On the optimally-tuned PtPdFeCoNi HEA NRs, we achieve mass and specific activities of 0.99 A mg-1platinum group metal (PGM) and 1.32 mA cm-2PGM at 0.95 V versus reversible hydrogen electrode (vs. RHE), demonstrating a competitive performance. Experimental and theoretical investigations unveil that the stress-released compressive strain lowers the d-band center of Pt sites in HEA NRs, resulting in favorable desorption of oxygenated intermediates and thus accelerated ORR kinetics.

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Cite This Study

He et al. (2025) studied this question.

synapsesocial.com/papers/69337cdbb3f947a0a1259ebdhttps://doi.org/10.1038/s41467-025-65856-z
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