过电位
析氧
分解水
电催化剂
电解水
催化作用
材料科学
化学工程
氧化铈
电解
电化学
氧化物
无机化学
制氢
法拉第效率
电流密度
氢燃料
涂层
铈
能量转换
纳米技术
储能
电化学能量转换
氧化还原
氢
功率密度
作者
QiHong Zhou,JiaJun Lai,Jinming Zeng,C. L. Liu,Hui Li,Xiaoping Zou,Xiaopeng Qi,Tongxiang Liang
标识
DOI:10.1021/acssuschemeng.5c12250
摘要
With the continuous development of new energy technologies, there is a growing need for highly efficient, economical, and robust trifunctional electrocatalysts for the hydrogen evolution reaction (HER), oxygen evolution reaction (OER), and oxygen reduction reaction (ORR) to meet the demanding requirements of applications, such as rechargeable zinc-air batteries (ZABs) and overall water splitting, particularly under high current conditions. Unfortunately, most current research on trifunctional catalysts is limited to water electrolysis at low current densities, which restricts their practical application. To address this issue, in this work, through an integrated multistage structural design combined with a cerium oxide coating, we have developed a trifunctional catalyst capable of efficient overall water splitting at high current densities, with enhanced stability. The CoFe@CNT@CeO2/IF (Iron foam) catalyst exhibits a half-wave potential of 0.822 V for ORR. At a high current density of 500 mA·cm–2, it shows an HER overpotential of 314 mV, with stable electrochemical performance maintained for 90 h. The OER overpotential is 403 mV, with stable electrochemical performance sustained for 96 h. In addition, the assembled ZAB demonstrates a power density of 135.75 mW·cm–2, and self-driven overall water splitting is successfully realized using this catalyst. These results demonstrate that the prepared trifunctional catalyst holds significant promise for energy storage and conversion applications.
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