电催化剂
催化作用
析氧
熔盐
材料科学
氧化钌
电解
钌
氧化物
无机化学
纳米棒
电解水
化学工程
钴
阳极
镧
氧气
氧化铈
分解水
过渡金属
金属
电化学
氧化钴
法拉第效率
化学
晶体生长
纳米技术
普鲁士蓝
双金属片
Crystal(编程语言)
作者
Chun Hu,Zhongfeng Wang,Lijia Liu,Sapna Sinha,Kazu Suenaga,Ximeng Lv,Xiao Zhao,Jiacheng Wang,Fuqiang Huang
出处
期刊:Small
[Wiley]
日期:2026-08-13
卷期号:: e75238-e75238
摘要
ABSTRACT Ruthenium oxide (RuO 2 ) is the most promising alternative to iridium oxide (IrO 2 ) catalyst in proton‐exchange‐membrane water electrolysis (PEMWE). However, its practical application has been hindered by poor stability. Here, we developed an interface‐growth‐assisted molten salt synthesis (MSS) strategy for the preparation of stable cobalt (Co)‐embedded RuO 2 (Co‐RuO 2 ) nanorods using a lanthanum cobaltate (LaCoO 3 ) template. The MSS environment is beneficial for anisotropic growth and the exposure of highly active RuO 2 crystal planes. Moreover, the in situ topological transformation arising from the interface growth of RuO 2 on LaCoO 3 can further enhance these effects and incorporate Co into the RuO 2 lattice. The PEMWE electrolyzer with Co‐RuO 2 as the anode catalyst can operate steadily for over 300 h at 500 mA cm −2 . Theoretical simulations indicate that Co substitutions would stabilize oxygen vacancies and increase metal‐oxygen covalency, thereby lowering cell voltage and improving the stability of the PEMWE electrolyzer. This work pioneers template‐directed interface growth in an MSS environment to prepare anisotropic RuO 2 catalysts for practical PEMWE applications.
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