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January 25, 2026Angewandte Chemie1 citations

Positive Feedback‐Driven NiRu Frustrated Lewis Pairs Catalyst Enables a Self‐Reinforcing Catalytic Cycle for Cascade‐Coupled Hydrogen Production

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KTKecheng TongLXLiangliang XuXWX.M. Wang

Key Points

  • This research aims to develop a catalyst that accelerates hydrogen evolution reactions by utilizing positive feedback mechanisms.
  • Developed a NiRu dual single-atom and nanocluster catalyst anchored on nitrogen-doped carbon.
  • Mimicked enzymatic feedback mechanisms to enhance catalytic efficiency.
  • Studied the coupling between water dissociation and hydrogen adsorption in the catalyst.
  • Evaluated the catalyst's performance over extended periods.
  • Achieved significant hydrogen evolution reaction performance with remarkable durability exceeding 1000 hours at 1.0 A cm^-2.
  • Demonstrated effective coupling between sequential reaction steps via hydrogen spillover.
  • Established a self-reinforcing catalytic cycle enhancing reaction rates.

Abstract

Abstract The alkaline hydrogen evolution reaction (HER) associated with anion exchange membrane water electrolyzers (AEMWEs) is kinetically hindered by sluggish water dissociation and complex intermediate adsorption, which previous reports have inadequately addressed through isolated optimization, neglecting the intrinsic coupling between HER elementary steps. Herein, we report a frustrated Lewis pairs (FLPs) catalyst comprising NiRu dual single‐atoms and adjacent NiRu nanoclusters anchored on nitrogen‐doped carbon (Ni 1 Ru 1 ‐NiRu@NC), mimicking the enzymatic positive feedback mechanism that drives a self‐reinforcing catalytic cycle and accelerates the coupled elementary steps in a cascade manner. The catalyst featuring spatially proximate Lewis acid and base sites enable sequential reaction steps, where water dissociation occurs at acid sites and hydrogen adsorption proceed at base sites. The two steps are bridged through rapid hydrogen spillover channel, constructing a closed catalytic circuit in which hydrogen consumption at base sites promotes continuous water dissociation at acid sites. Benefiting from this positive feedback loop, Ni 1 Ru 1 ‐NiRu@NC achieves a remarkable HER performance and exhibits exceptional long‐term durability (>1000 h at 1.0 A cm − 2 ) in AEMWEs. Our findings demonstrate a new strategy to integrate positive feedback‐driven, cascade‐coupled catalysis in FLPs systems, offering a promising pathway toward high‐performance alkaline HER catalysts for industrial application.

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Cite This Study

Tong et al. (2026) studied this question.

synapsesocial.com/papers/6975b1eafeba4585c2d6d638https://doi.org/10.1002/ange.202523215
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