化学
催化作用
铵
分子
离子
无机化学
碱性水电解
分子动力学
从头算
化学工程
拉曼光谱
化学物理
氢键
动力学
膜
分子工程
工作(物理)
电解水
分解水
质子
离子交换
元动力学
计算化学
氢铵
碱土金属
氢
从头算量子化学方法
能源景观
作者
Yilong Zhao,Yunxuan Ding,Wenlong Li,Weili Shi,Linqin Wang,Zhiheng Li,Gaoxin Lin,Lanlan He,Wentao Zheng,Wen Wu,Biaobiao Zhang,Fusheng Li,Licheng Sun
摘要
Abstract Engineering the electrode–electrolyte interface has emerged as a critical strategy to overcome sluggish kinetics of alkaline hydrogen evolution reaction (HER). However, the dynamic and complex nature of the double electric layer makes mechanistic understanding at the molecular level and rational interfacial regulation highly challenging. Herein, we demonstrate that molecular modification of Ni-doped MoS2 catalyst with a zwitterionic molecule (z-Ni-MoS2) markedly enhances alkaline HER kinetics. In-situ Raman spectroscopy combined with ab initio molecular dynamics (AIMD) simulations reveals that the quaternary ammonium cation reconstructs interfacial water into linear hydrogen-bond chains via electrostatic repulsion of potassium ions from the z-Ni-MoS2 surface. This distinctive interfacial microenvironment enables water molecules within hydrogen-bond chains to directly relay protons to sulfur sites via a Grotthuss-associated mechanism. In contrast to the conventional diffusion-dominated, non-Grotthuss-associated mechanism, this mechanism lowers the water-dissociation barrier and promotes interfacial proton transport, thereby accelerating alkaline HER kinetics. To evaluate device-level applicability, z-Ni-MoS2 was incorporated into an anion exchange membrane water electrolyzer (AEM-WE). The system delivers outstanding performance of 5.21 A cm–2 at 1.8 V and 9.57 A cm–2 at 2 V, 80 °C, surpassing the United States Department of Energy (DOE) 2026 target (3 A cm–2 at 1.8 V). This work provides molecular-level insight for interfacial water restructuring as a design principle for high-performance alkaline HER catalysts.
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