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May 21, 2026Nature Communications1 citationsOpen Access

Unveiling Spin Dependent Effectiveness of Strain Engineering in Metal Catalysts

CFChunyao FangZFZhanzhao FuYSYuetan Su

Key Points

  • This research aims to investigate how strain engineering affects catalytic activity in metal catalysts, especially in the presence of magnetic effects.
  • Analyzed ammonia synthesis as a model reaction to assess catalytic activity.
  • Conducted kinetic analysis to examine the impact of strain on reactants.
  • Evaluated strain sensitivity across various metals, including magnetic and non-magnetic types.
  • Magnetic metals showed reduced sensitivity to strain in their chemisorption behavior compared to non-magnetic metals.
  • Strain engineering significantly enhanced the reactivity of weakly magnetic or non-magnetic metals while having marginal impacts on strongly magnetic metals.
  • Proposed a practical strategy for enhancing ammonia synthesis catalysts through strain engineering based on metal properties.

Abstract

Strain engineering has emerged as a powerful strategy to modulate catalytic activity, yet its general applicability remains uncertain, especially for magnetic catalysts where spin effect also plays a critical role in governing reactivity. Here, we reveal a metal-dependent modulation on adsorbate chemisorption to strain, with magnetic metals exhibiting reduced strain sensitivity compared to non-magnetic metals. Using ammonia synthesis as a model reaction, we attribute this behavior to an antagonistic interaction between strain and spin, wherein spin effect counteracts strain-induced chemisorption modulation and becomes stronger with increasing magnetism, originating from the varying shift of d-band center under the combined effects. Kinetic analysis further confirms that strain engineering markedly modulates the reactivity of weakly magnetic or non-magnetic metals by reshaping traditional scaling relations under strain-free conditions, while offering marginal impact to strongly magnetic metals. Accordingly, we propose a practical strain-based strategy to enhance the activity of representative ammonia synthesis catalysts, including Fe, Co, Ni and Ru. Moreover, the metal-dependent strain effect can be extended to key intermediates in other reactions, indicating a general phenomenon and establishing a conditional principle for applying strain engineering in metal catalysts design.

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Cite This Study

Fang et al. (2026) studied this question.

synapsesocial.com/papers/6a0ea0f7be05d6e3efb5f510https://doi.org/10.1038/s41467-026-73254-2
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