Li Yong, Xin Tianran, Cao Zongcheng, Zheng Weiran, He Peng, Yoon Suk Lee Lawrence
School of Materials Science and Engineering, Anhui Polytechnic University, Wuhu, 241000, Anhui, China.
Department of Chemistry, Guangdong Provincial Key Laboratory of Materials and Technologies for Energy Conversion, Guangdong Technion-Israel Institute of Technology, Shantou, 515063, China.
ChemSusChem. 2024 Aug 12;17(15):e202301926. doi: 10.1002/cssc.202301926. Epub 2024 Apr 22.
Seawater electrolysis presents a viable route for sustainable large-scale hydrogen production, yet its practical application is hindered by several technical challenges. These include the sluggish kinetics of hydrogen evolution, poor stability, cation deposition at the cathode, electrode corrosion, and competing chloride oxidation at the anode. To overcome these obstacles, the development of innovative electrocatalysts is crucial. Transition metal phosphides (TMPs) have emerged as promising candidates owing to their superior catalytic performance and tunable structural properties. This review provides a comprehensive analysis of recent progress in the structural engineering of TMPs tailored for efficient seawater electrolysis. We delve into the catalytic mechanisms underpinning hydrogen and oxygen evolution reactions in different pH conditions, along with the detrimental side reactions that impede hydrogen production efficiency. Several methods to prepare TMPs are then introduced. Additionally, detailed discussions on structural modifications and interface engineering tactics are presented, showcasing strategies to enhance the activity and durability of TMP electrocatalysts. By analyzing current research findings, our review aims to inform ongoing research endeavors and foster advancements in seawater electrolysis for practical and ecologically sound hydrogen generation.
海水电解是可持续大规模制氢的一条可行途径,但其实际应用受到若干技术挑战的阻碍。这些挑战包括析氢动力学缓慢、稳定性差、阳离子在阴极沉积、电极腐蚀以及阳极处竞争性的氯化物氧化。为克服这些障碍,开发创新的电催化剂至关重要。过渡金属磷化物(TMPs)因其优异的催化性能和可调控的结构特性而成为有前景的候选材料。本文综述对为高效海水电解量身定制的TMPs结构工程的最新进展进行了全面分析。我们深入探讨了在不同pH条件下氢析出和氧析出反应的催化机制,以及阻碍制氢效率的有害副反应。随后介绍了几种制备TMPs的方法。此外,还对结构修饰和界面工程策略进行了详细讨论,展示了提高TMP电催化剂活性和耐久性的策略。通过分析当前的研究结果,我们的综述旨在为正在进行的研究工作提供信息,并推动海水电解在实际和生态友好型制氢方面取得进展。