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February 6, 2026Advanced Sustainable Systems1 citations

Surface and Interface Engineered Hydrated Nickel Hydroxide on Nickel Enables Rapid Active Species Shuffling in Alkaline Hydrogen Electrocatalysis

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KSKrishnamoorthy SilambarasanGAGopinathan AnilkumarSAS. Assa Aravindh

Key Points

  • The study aims to explore how hydration in nickel catalysts enhances hydrogen oxidation and evolution reactions in alkaline conditions.
  • Conducted electrochemical measurements of nickel catalysts coated with nickel hydroxide in alkaline media.
  • Utilized density functional theory (DFT) calculations to understand the energetics and kinetics at the catalyst interface.
  • Examined the effects of water molecules on catalyst performance and active species behavior.
  • Established that hydrated conditions significantly improve hydrogen oxidation and evolution kinetics.
  • Identified the role of interfacial hydrogen bonding in the catalytic process.
  • Demonstrated that nickel hydroxide modifications can enhance catalyst efficiency for fuel cells and electrolyzers.

Abstract

ABSTRACT Achieving acid‐like hydrogen oxidation reaction (HOR) and hydrogen evolution reaction (HER) activity in alkaline media using low‐cost, non‐precious metal catalysts is essential for energy conversion technologies. Here, we demonstrate the indispensable role of water within the catalyst layer in enhancing HOR/HER kinetics, mediated by hydrated and dehydrated oxophilic sites on nickel (Ni) catalysts coated with nickel hydroxide (Ni(OH) 2 ). Electrochemical measurements combined with density functional theory (DFT) calculations show that an acid‐like environment creates at the electrified interface through water molecules that bridge active hydrogen and oxygen species within the catalyst surface layer. This interfacial behavior differs from that described in conventional bulk and interface models. Our findings highlight the importance of interfacial hydrogen bonding network across the interface in hydrogen electrocatalysis and provide guidance for the design of efficient catalysts for alkaline fuel cell and electrolyzer applications.

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Cite This Study

Silambarasan et al. (2026) studied this question.

synapsesocial.com/papers/698585cb8f7c464f230097a2https://doi.org/10.1002/adsu.202501510
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