材料科学
双功能
电催化剂
电解
电极
纳米结构
纳米技术
纳米-
催化作用
析氧
电解水
分解水
电化学
化学工程
复合材料
化学
生物化学
物理化学
光催化
工程类
电解质
作者
Sundaram Chandrasekaran,Mahima Khandelwal,Dayong Fan,Lijun Sui,Jin Suk Chung,R.D.K. Misra,Peng Yin,Eui Jung Kim,Woong Kim,Aravindan Vanchiappan,Yongping Liu,Seung Hyun Hur,Han Zhang,Chris Bowen
标识
DOI:10.1002/aenm.202200409
摘要
Abstract The development of robust nano‐ and microstructured catalysts on highly conductive substrates is an effective approach to produce highly active binder‐free electrodes for energy conversion and storage applications. As a result, nanostructured electrodes with binder‐free designs have abundant advantages that provide superior electrocatalytic performance; these include more exposed active sites, large surface area, strong adhesion to substrates, facile charge transfer, high conductivity, high intrinsic catalytic activity, and fine‐tuning of its electronic nature through nanostructure modification. Notably, the interface chemistry of an electrocatalyst plays a significant role in their optimized electrocatalytic activity and stability. This review provides an overview of recent progress in nano‐ and microstructured catalysts, such as one, two, and 3D catalysts as binder‐free electrodes for electrocatalytic water splitting via the hydrogen evolution reaction and oxygen evolution reaction, and beyond. Furthermore, this review focuses on the current challenges and synthesis strategies of binder‐free electrodes, with a focus on the impact of nanostructure on their functional property relationships and enhanced bifunctional electrocatalytic performance. Finally, an outlook for their future advances in energy conversion and storage is provided.
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