异质结
电催化剂
催化作用
电解质
再分配(选举)
材料科学
氢
分解水
质子
化学工程
化学物理
质子交换膜燃料电池
工作(物理)
功率密度
多金属氧酸盐
工作职能
动力学
电场
电荷密度
制氢
密度泛函理论
电流密度
电极
交换电流密度
纳米技术
化学
析氧
无机化学
传质
过渡金属
电子转移
费用交换
可逆氢电极
电压
作者
Ling Li,Lu Li,Yiru Zhao,Xinpeng Sun,Yuxi Xiao,Di Li,Li K,Shenghua Chen,Fan Lv,Chunhui Xiao,Shujiang Ding,Lingyou Zeng,Shaojun Guo
摘要
The sluggish proton transfer in alkaline electrolytes severely limits hydrogen oxidation reaction (HOR) kinetics of fuel cells. Although the orientation of interfacial water strongly governs proton transport, precise control over its configuration remains challenging due to the inherently random distribution of water molecules. Herein, we report the synthesis of isolated Gadolinium (Gd) embedded into Ru/RuOx heterostructures and engineer the built-in electric fields (BIEF) at the heterostructure for effectively tuning surface oxophilicity and directing the reorientation of interfacial water configuration to boost HOR catalysis of fuel cells. We find that isolated Gd atoms intensify the BIEF at the Ru/RuOx interface, driving strengthened asymmetrical charge redistribution and finely tune work function of catalyst. This electronic modulation in turn optimizes surface oxophilicity of active sites, enabling balanced hydroxyl species coverage and preferential stabilization of H2O↓-oriented water, thereby strengthening hydrogen-bond network and constructing an efficient interfacial proton-conduction channel. The resulting Ru/RuOx-Gd@C delivers an exceptional mass activity of 8.87 mA µgRu - 1 and an exchange current density of 0.39 mA cm-2, outperforming Pt/C by 6.6 and 2.0 times, respectively. An anion-exchange-membrane fuel-cell assembled with Ru/RuOx-Gd@C achieves a PGM-normalized peak power density of 16.3 W mgRu -1 and operates stably for over 60 h at 0.2 A cm-2.
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