过电位
材料科学
电解水
催化作用
离解(化学)
碱性水电解
拉曼光谱
吸附
化学物理
电子结构
分解水
电化学
电解
离子
氢
阴极
化学工程
纳米技术
水的自电离
工作(物理)
双功能
无机化学
离子交换
法拉第效率
析氧
沸石
海水
红外光谱学
作者
Guanghui Xu,Mingzi Sun,Xiaolong Jia,Cheng Huang,Chuanfu Li,Bolong Huang,Meiling Xiao,Changpeng Liu,Jianbing Zhu,Wei Xing
摘要
ABSTRACT Ru‐based catalysts are promising cathodes for alkaline hydrogen evolution reaction (HER) in anion exchange membrane water electrolysis (AEMWE), yet sluggish water dissociation, overly strong Ru─H adsorption, and durability loss still limit their practical performance. Herein, we construct a controlled M─N─C (M═Fe, Co, Ni) support series for anchoring Ru particles and establish a dual‐regulation strategy that couples interfacial water activation with support‐induced Ru electronic optimization. M─N 4 coordination motifs mainly regulate the near‐surface water environment and promote water‐dissociation kinetics, while the M─N─C supports modulate the electronic structure of Ru through metal‐support interaction. The optimized Ru/Ni─N─C delivers an ultralow overpotential of 9 mV at 10 mA cm −2 and achieves 4000 mA cm −2 at 2.0 V in a practical AEMWE, with an apparent voltage increase rate of 3.1 µV h −1 over 1600 h. In situ Raman and infrared spectroscopies reveal that Ni─N 4 motifs enrich and polarize interfacial K + ‐H 2 O species, facilitating the Volmer step. Theoretical calculations further show that Ni─N 4 lowers the water dissociation barrier to 0.19 eV, while the Ni─N─C support optimizes Ru─H adsorption to −0.07 eV through metal‐support interaction. This work provides mechanistic guidance for designing efficient Ru‐based alkaline HER catalysts by integrating water‐structure regulation with support‐mediated Ru electronic modulation.
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