Mechanistic study reveals distinct catalytic roles of nickel surface species in alkaline hydrogen evolution, indicating strategies for designing next-generation water electrolysers.
The role of Ni surface species in the hydrogen evolution reaction (HER) under alkaline conditions remains a key challenge in the development of cost-effective and efficient catalysts for sustainable hydrogen production. Here we systematically investigate well-defined Ni surfaces through carefully designed experiments to unravel the contributions of specific Ni species (NiO, Ni(OH) 2 and NiH x ) to HER kinetics. Using detailed electrochemical and surface characterization, combined with density functional theory calculations, we demonstrate that NiO, contrary to a body of literature, acts as a passive spectator, blocking active sites without altering intrinsic activity; NiH x inhibits HER by modifying the electronic structure of Ni; and Ni(OH) 2 promotes HER by facilitating water dissociation and creating new, highly active sites in its vicinity on metallic Ni. Our findings establish a unified framework for understanding the intrinsic activity of Ni-based catalysts, addressing discrepancies in the literature and providing insights into the design of next-generation alkaline water electrolysers.
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Kozlica et al. (2026) studied this question.
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