Li Wenxian, Liu Yang, Azam Ashraful, Liu Yichen, Yang Jack, Wang Danyang, Sorrell Charles Christopher, Zhao Chuan, Li Sean
UNSW Materials and Manufacturing Futures Institute, The University of New South Wales, Sydney, NSW, 2052, Australia.
Adv Mater. 2024 Oct;36(42):e2404658. doi: 10.1002/adma.202404658. Epub 2024 Jul 7.
Catalysts play a crucial role in water electrolysis by reducing the energy barriers for hydrogen and oxygen evolution reactions (HER and OER). Research aims to enhance the intrinsic activities of potential catalysts through material selection, microstructure design, and various engineering techniques. However, the energy consumption of catalysts has often been overlooked due to the intricate interplay among catalyst microstructure, dimensionality, catalyst-electrolyte-gas dynamics, surface chemistry, electron transport within electrodes, and electron transfer among electrode components. Efficient catalyst development for high-current-density applications is essential to meet the increasing demand for green hydrogen. This involves transforming catalysts with high intrinsic activities into electrodes capable of sustaining high current densities. This review focuses on current improvement strategies of mass exchange, charge transfer, and reducing electrode resistance to decrease energy consumption. It aims to bridge the gap between laboratory-developed, highly efficient catalysts and industrial applications regarding catalyst structural design, surface chemistry, and catalyst-electrode interplay, outlining the development roadmap of hierarchically structured electrode-based water electrolysis for minimizing energy loss in electrocatalysts for water splitting.
催化剂通过降低析氢反应和析氧反应(HER和OER)的能量壁垒,在水电解中起着至关重要的作用。研究旨在通过材料选择、微观结构设计和各种工程技术来提高潜在催化剂的本征活性。然而,由于催化剂微观结构、维度、催化剂 - 电解质 - 气体动力学、表面化学、电极内电子传输以及电极组件间电子转移之间复杂的相互作用,催化剂的能量消耗常常被忽视。开发适用于高电流密度应用的高效催化剂对于满足对绿色氢气日益增长的需求至关重要。这涉及将具有高本征活性的催化剂转化为能够维持高电流密度的电极。本综述聚焦于当前改善传质、电荷转移以及降低电极电阻以降低能量消耗的策略。其目的是在实验室开发的高效催化剂与工业应用之间,就催化剂结构设计、表面化学以及催化剂 - 电极相互作用方面弥合差距,概述基于分层结构电极的水电解的发展路线图,以最小化用于水分解的电催化剂中的能量损失。