材料科学
纳米团簇
过电位
化学工程
催化作用
碳纤维
电解水
多孔性
钌
柯肯德尔效应
无机化学
纳米颗粒
介电谱
纳米技术
吸附
儿茶酚
水银孔隙仪
光谱学
分解水
密度泛函理论
聚合物
金属有机骨架
氢
自组装
微晶
扩散
冷凝
作者
Xiaohong Wang,Juguo Dai,Dongxu Li,Jianmin Wu,Hucheng Fu,Ying Xu,Xiaojie Qi,Qian Xue,Yanbin Shen,Xiaoqing Pan,Conghui Yuan,Shuifen Xie,Andreu Cabot,Lizong Dai
标识
DOI:10.1002/adfm.202529149
摘要
ABSTRACT Optimizing intermediate adsorption energetics across coupled elementary steps remains challenging for the alkaline hydrogen evolution reaction. Porous boronate polymer nanospheres (BPNSs), formed by condensation between boronic acid and catechol monomers, are used as a precursor scaffold to construct a dual‐site catalyst comprising Ru single atoms (Ru SAs) and RuP nanoclusters (NCs) anchored on N, P, and B co‐doped porous carbon nanospheres (Ru SA ‐RuP@NPB‐CNSs). During in situ pyrolysis/phosphidation, the BPNS precursor simultaneously i) supplies P to form RuP NCs, ii) transforms into highly porous N, P, and B co‐doped carbon nanospheres via a coordination‐driven Kirkendall effect, and iii) establishes strong metal‐support interactions and spatial confinement that stabilize both Ru SAs and RuP NCs while tuning their electronic structures. Density functional theory and operando spectroscopy identify complementary roles: RuP NCs facilitate water dissociation, whereas Ru SAs accelerate recombination of H * and H 2 desorption. Ru SA ‐RuP@NPB‐CNSs delivers an overpotential of 19 mV at 10 mA cm −2 , an eightfold higher mass activity than commercial Pt/C in 1.0 M KOH, and stable operation at 100 mA cm −2 for over 800 h. In anion‐exchange membrane water electrolysis, a low Ru loading of 50 µg Ru cm −2 achieves 1.0 A cm −2 at 1.80 V and sustains 500 h at 1.0 A cm −2 .
科研通智能强力驱动
Strongly Powered by AbleSci AI