TY - JOUR
T1 - Tailoring Interfacial Water Via High-Entropy Orbital Reconstruction for Durable Alkaline Water Electrolysis
AU - Chen, Zihao
AU - Chu, Zhaoqin
AU - Wu, Pengfei
AU - Wang, Jinyu
AU - Sun, Yuzhuo
AU - Hu, Jingtian
AU - Chen, Wenxing
AU - Guo, Lingling
AU - Yin, Penggang
AU - Zhang, Tao
AU - Li, Yanming
AU - Huang, Qing
AU - Liang, Kun
AU - Wang, Degao
AU - Chai, Zhifang
N1 - Publisher Copyright:
© 2026 American Chemical Society.
PY - 2026/7/29
Y1 - 2026/7/29
N2 - The hydrogen evolution reaction (HER) is central to clean hydrogen production, yet its application in alkaline water electrolysis is severely limited by intrinsically sluggish kinetics and the poor long-term stability of Pt-based catalysts, particularly at industrially relevant current densities. Here, we propose a high-entropy alloying strategy that enables synergistic tuning of the electronic structure and interfacial interactions. This strategy induces reconstruction of the Pt 5d orbitals, optimizing interfacial water dissociation kinetics and reshaping the interfacial water distribution. At the same time, it promotes a more delocalized electronic structure and stronger bonding through pronounced d-p, d-d, and sp orbital hybridization, as well as vibrational coupling driven by local atomic displacements. The downshifted Pt 5d band center weakens *H adsorption, thereby facilitating hydrogen desorption while effectively suppressing surface oxidation and particle agglomeration. As a result, the FeCoNiPtIn/MWCNT catalyst delivers an ultralow overpotential of 8 mV at 10 mA cm-2 and operates stably for over 5000 h at 250 mA cm-2, far outperforming commercial Pt/C. This work integrates orbital engineering with interfacial water regulation, establishing a compelling design paradigm for durable HER electrocatalysts for large-scale renewable energy conversion.
AB - The hydrogen evolution reaction (HER) is central to clean hydrogen production, yet its application in alkaline water electrolysis is severely limited by intrinsically sluggish kinetics and the poor long-term stability of Pt-based catalysts, particularly at industrially relevant current densities. Here, we propose a high-entropy alloying strategy that enables synergistic tuning of the electronic structure and interfacial interactions. This strategy induces reconstruction of the Pt 5d orbitals, optimizing interfacial water dissociation kinetics and reshaping the interfacial water distribution. At the same time, it promotes a more delocalized electronic structure and stronger bonding through pronounced d-p, d-d, and sp orbital hybridization, as well as vibrational coupling driven by local atomic displacements. The downshifted Pt 5d band center weakens *H adsorption, thereby facilitating hydrogen desorption while effectively suppressing surface oxidation and particle agglomeration. As a result, the FeCoNiPtIn/MWCNT catalyst delivers an ultralow overpotential of 8 mV at 10 mA cm-2 and operates stably for over 5000 h at 250 mA cm-2, far outperforming commercial Pt/C. This work integrates orbital engineering with interfacial water regulation, establishing a compelling design paradigm for durable HER electrocatalysts for large-scale renewable energy conversion.
KW - Alkaline hydrogen evolution reaction
KW - High-entropy alloys
KW - Interfacial water regulation
KW - Orbital reconstruction
UR - https://www.scopus.com/pages/publications/105046312544
U2 - 10.1021/acs.nanolett.6c02822
DO - 10.1021/acs.nanolett.6c02822
M3 - Article
C2 - 42458861
AN - SCOPUS:105046312544
SN - 1530-6984
VL - 26
SP - 9678
EP - 9687
JO - Nano Letters
JF - Nano Letters
IS - 29
ER -