过电位
材料科学
催化作用
析氧
氢
电解水
分解水
电解
氢溢流
密度泛函理论
制氢
化学工程
电催化剂
钌
纳米技术
铱
纳米颗粒
无机化学
碱性水电解
电化学
电流密度
化学物理
氧化还原
氧气
耐久性
海水
作者
Hong Tang,Hao Yuan,Xingyang Wang,Fei Wang,Qi Zhao,Yong‐Wei Zhang,John Wang
摘要
ABSTRACT Industrial‐scale hydrogen production via alkaline water electrolysis requires electrocatalysts capable of sustaining ampere‐level current densities, yet the sluggish Volmer step remains a fundamental kinetic bottleneck. In this study, we report a surface‐microenvironment engineered catalyst in which atomically dispersed iridium atoms are selectively decorated on ruthenium nanoparticles through coordination with surface ─OH groups and defect oxygen sites, forming electronically coupled Ir─O─Ru interfacial ensembles. Density functional theory calculations based on the Ir─O─Ru interfacial model reveal a cooperative hydrogen‐spillover mechanism, in which the positively polarized Ir─O microenvironment promotes H 2 O activation, while the electronically tuned adjacent Ru sites accommodate the spilled‐over H* and drive the H─H coupling, thereby reducing the rate‐determining barrier to 0.19 eV. As a result, the catalyst achieves 1.0 A cm −2 at an overpotential of 103 mV in 1.0 M KOH and shows outstanding durability (3038 h at 1.0 A cm −2 ; 1593 h at 2.0 A cm −2 ). It further maintains stable operation in alkaline seawater (1427 h at 1.0 A cm −2 ) and anion‐exchange‐membrane electrolyzer (910 h at 80°C). These findings demonstrate that single‐atom surface decoration can effectively reconfigure interfacial reaction pathways, providing an efficient strategy for high‐flux alkaline hydrogen evolution.
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