Lakhan Muhammad Nazim, Hanan Abdul, Hussain Altaf, Ali Soomro Irfan, Wang Yuan, Ahmed Mukhtiar, Aftab Umair, Sun Hongyu, Arandiyan Hamidreza
Applied Chemistry and Environmental Science, School of Science, STEM College, RMIT University, Melbourne, Australia.
Sunway Center for Electrochemical Energy and Sustainable Technology, SCEEST, Sunway University, Bandar Sunway, Malaysia.
Chem Commun (Camb). 2024 May 9;60(39):5104-5135. doi: 10.1039/d3cc06015b.
Water electrolysis is a promising method for efficiently producing hydrogen and oxygen, crucial for renewable energy conversion and fuel cell technologies. The hydrogen evolution reaction (HER) and oxygen evolution reaction (OER) are two key electrocatalytic reactions occurring during water splitting, necessitating the development of active, stable, and low-cost electrocatalysts. Transition metal (TM)-based electrocatalysts, spanning noble metals and TM oxides, phosphides, nitrides, carbides, borides, chalcogenides, and dichalcogenides, have garnered significant attention due to their outstanding characteristics, including high electronic conductivity, tunable valence electron configuration, high stability, and cost-effectiveness. This timely review discusses developments in TM-based electrocatalysts for the HER and OER in alkaline media in the last 10 years, revealing that the exposure of more accessible surface-active sites, specific electronic effects, and string effects are essential for the development of efficient electrocatalysts towards electrochemical water splitting application. This comprehensive review serves as a guide for designing and constructing state-of-the-art, high-performance bifunctional electrocatalysts based on TMs, particularly for applications in water splitting.
水电解是一种高效生产氢气和氧气的有前景的方法,这对于可再生能源转换和燃料电池技术至关重要。析氢反应(HER)和析氧反应(OER)是水分解过程中发生的两个关键电催化反应,因此需要开发活性高、稳定性好且成本低的电催化剂。基于过渡金属(TM)的电催化剂,包括贵金属和TM氧化物、磷化物、氮化物、碳化物、硼化物、硫族化物和二硫族化物,因其出色的特性,如高电子导电性、可调节的价电子构型、高稳定性和成本效益,而备受关注。这篇及时的综述讨论了过去10年中用于碱性介质中HER和OER的基于TM的电催化剂的进展,揭示了更多可及表面活性位点的暴露、特定电子效应和串效应对于开发用于电化学水分解应用的高效电催化剂至关重要。这篇全面的综述为设计和构建基于TM的先进高性能双功能电催化剂提供了指导,特别是用于水分解应用。