TY - JOUR
T1 - Unlocking Hydrogen-Bond Network-Mediated Directional Spillover Mechanism in Electrocatalytic Hydrogen Evolution
AU - Li, Linsen
AU - Li, Yuefei
AU - Zang, Hong Ying
AU - Huang, Shan
AU - Jiang, Zhao
AU - Kong, Jie
AU - Li, Jiayuan
N1 - Publisher Copyright:
© 2025 Wiley-VCH GmbH.
PY - 2025
Y1 - 2025
N2 - Hydrogen spillover offers a promising route to circumvent scaling relations in the electrocatalytic hydrogen evolution reaction (HER) by spatially decoupling the hydrogen adsorption and desorption steps. However, its practical application has been limited by sluggish spillover kinetics across heterogeneous interfaces. In this work, we propose a hydrogen-bond (H-bond) network-mediated spillover mechanism that bypasses conventional interfacial mediation. Within this mechanism, active hydrogen species (H*) generated on one component sequentially enter the H-bond network, undergo directional transport via Grotthuss-type H* hopping along the network, and ultimately uptake onto another component. To realize this concept, we designed a Pt/g-C3N4/CoP catalyst, in which Pt effectively enriches H* to establish a coverage gradient from Pt→g-C3N4→CoP; g-C3N4 optimizes the proximity of the H-bond network to facilitate H* shuttling and serves as H* relay sites; and CoP provides facile sites for H2 desorption. This configuration enables efficient H-bond network-mediated spillover along the Pt→g-C3N4→CoP pathway, achieving an ultrahigh Pt-mass-normalized HER activity of 175.0 A mgPt−1 at −0.1 V vs. RHE in acidic medium. The mechanism elucidated here opens new avenues for catalyst design in multi-step hydrogen-involving electrocatalytic processes.
AB - Hydrogen spillover offers a promising route to circumvent scaling relations in the electrocatalytic hydrogen evolution reaction (HER) by spatially decoupling the hydrogen adsorption and desorption steps. However, its practical application has been limited by sluggish spillover kinetics across heterogeneous interfaces. In this work, we propose a hydrogen-bond (H-bond) network-mediated spillover mechanism that bypasses conventional interfacial mediation. Within this mechanism, active hydrogen species (H*) generated on one component sequentially enter the H-bond network, undergo directional transport via Grotthuss-type H* hopping along the network, and ultimately uptake onto another component. To realize this concept, we designed a Pt/g-C3N4/CoP catalyst, in which Pt effectively enriches H* to establish a coverage gradient from Pt→g-C3N4→CoP; g-C3N4 optimizes the proximity of the H-bond network to facilitate H* shuttling and serves as H* relay sites; and CoP provides facile sites for H2 desorption. This configuration enables efficient H-bond network-mediated spillover along the Pt→g-C3N4→CoP pathway, achieving an ultrahigh Pt-mass-normalized HER activity of 175.0 A mgPt−1 at −0.1 V vs. RHE in acidic medium. The mechanism elucidated here opens new avenues for catalyst design in multi-step hydrogen-involving electrocatalytic processes.
KW - Electrocatalysis
KW - Hydrogen evolution reaction
KW - Hydrogen spillover
KW - Hydrogen-bond network
UR - https://www.scopus.com/pages/publications/105021983925
U2 - 10.1002/anie.202517583
DO - 10.1002/anie.202517583
M3 - 文章
AN - SCOPUS:105021983925
SN - 1433-7851
JO - Angewandte Chemie - International Edition
JF - Angewandte Chemie - International Edition
ER -