TY - JOUR
T1 - Reversible Hydrogen Spillover
T2 - Adsorption-Desorption Site Reversal in HER
AU - Gaur, Ashish
AU - Sharma, Jatin
AU - Kim, Jaeyeong
AU - Umapathi, Reddicherla
AU - Kim, Dongyeon
AU - Kim, Daehae
AU - Kim, Kang Min
AU - Mhin, Sungwook
AU - Han, Hyuk Su
N1 - Publisher Copyright:
© 2025 Wiley-VCH GmbH.
PY - 2026/1/8
Y1 - 2026/1/8
N2 - The shift to a sustainable economy relies heavily on green hydrogen production. The elevated energy barrier of water dissociation precludes hydrogen generation in alkaline medium. To circumvent the inherent limitations of conventional catalysts governed by the Sabatier principle, Reversible Hydrogen Spillover has emerged as a powerful design strategy. This approach spatially decouples catalytic function by allocating water dissociation to a designed support, followed by hydrogen recombination and desorption to a neighboring metallic site, establishing a synergistic pathway that skips traditional kinetic bottleneck. This perspective provides a comprehensive understanding of the material design principles that enable reversible hydrogen spillover. Four key strategies are critically examined: 1) Structurally tuning the support for the intrinsic water dissociation activity, 2) integrating oxophilic species to create dedicated water scissoring hotspots, 3) implanting single-atomic metal sites to suppress the interfacial transfer barriers, 4) leveraging interatomic interaction in multi-metallic systems to synergistically boost both water dissociation and H2 evolution. The operando spectroscopic and electrochemical techniques (CO-stripping, scanning electrochemical microscopy, in situ Raman/infra-red) are further discussed for the molecular-level understanding of the spillover pathways. The study establishes a systematic framework that emphasizes reversible hydrogen spillover as a pivotal idea capable advancing the development of high-performance electrocatalyst.
AB - The shift to a sustainable economy relies heavily on green hydrogen production. The elevated energy barrier of water dissociation precludes hydrogen generation in alkaline medium. To circumvent the inherent limitations of conventional catalysts governed by the Sabatier principle, Reversible Hydrogen Spillover has emerged as a powerful design strategy. This approach spatially decouples catalytic function by allocating water dissociation to a designed support, followed by hydrogen recombination and desorption to a neighboring metallic site, establishing a synergistic pathway that skips traditional kinetic bottleneck. This perspective provides a comprehensive understanding of the material design principles that enable reversible hydrogen spillover. Four key strategies are critically examined: 1) Structurally tuning the support for the intrinsic water dissociation activity, 2) integrating oxophilic species to create dedicated water scissoring hotspots, 3) implanting single-atomic metal sites to suppress the interfacial transfer barriers, 4) leveraging interatomic interaction in multi-metallic systems to synergistically boost both water dissociation and H2 evolution. The operando spectroscopic and electrochemical techniques (CO-stripping, scanning electrochemical microscopy, in situ Raman/infra-red) are further discussed for the molecular-level understanding of the spillover pathways. The study establishes a systematic framework that emphasizes reversible hydrogen spillover as a pivotal idea capable advancing the development of high-performance electrocatalyst.
KW - alkaline hydrogen evolution reaction
KW - electrocatalysis
KW - hydrogen generation
KW - hydrogen-spillover effect
KW - single-atom catalyst
UR - https://www.scopus.com/pages/publications/105024005840
U2 - 10.1002/smll.202512742
DO - 10.1002/smll.202512742
M3 - Article
C2 - 41347282
AN - SCOPUS:105024005840
SN - 1613-6810
VL - 22
JO - Small
JF - Small
IS - 2
M1 - e12742
ER -