催化作用
电化学
可持续能源
电化学储能
理论(学习稳定性)
化学工程
材料科学
接口(物质)
化学
计算机科学
纳米技术
环境科学
超级电容器
电极
电气工程
可再生能源
物理化学
工程类
机器学习
肺表面活性物质
生物化学
吉布斯等温线
作者
Kun Du,Lifu Zhang,Jieqiong Shan,Jiaxin Guo,Jing Mao,Chueh‐Cheng Yang,Chia‐Hsin Wang,Zhenpeng Hu,Tao Ling
标识
DOI:10.1038/s41467-022-33150-x
摘要
Designing catalytic materials with enhanced stability and activity is crucial for sustainable electrochemical energy technologies. RuO2 is the most active material for oxygen evolution reaction (OER) in electrolysers aiming at producing 'green' hydrogen, however it encounters critical electrochemical oxidation and dissolution issues during reaction. It remains a grand challenge to achieve stable and active RuO2 electrocatalyst as the current strategies usually enhance one of the two properties at the expense of the other. Here, we report breaking the stability and activity limits of RuO2 in neutral and alkaline environments by constructing a RuO2/CoOx interface. We demonstrate that RuO2 can be greatly stabilized on the CoOx substrate to exceed the Pourbaix stability limit of bulk RuO2. This is realized by the preferential oxidation of CoOx during OER and the electron gain of RuO2 through the interface. Besides, a highly active Ru/Co dual-atom site can be generated around the RuO2/CoOx interface to synergistically adsorb the oxygen intermediates, leading to a favourable reaction path. The as-designed RuO2/CoOx catalyst provides an avenue to achieve stable and active materials for sustainable electrochemical energy technologies.
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