Hu Huashuai, Wang Xiaoli, Attfield J Paul, Yang Minghui
School of Environmental Science and Technology, Dalian University of Technology, Dalian 116024, China.
Centre for Science at Extreme Conditions and School of Chemistry, University of Edinburgh, King's Buildings, Mayfield Road, Edinburgh, UK.
Chem Soc Rev. 2024 Jan 2;53(1):163-203. doi: 10.1039/d3cs00717k.
Electrocatalytic high-throughput seawater electrolysis for hydrogen production is a promising green energy technology that offers possibilities for environmental and energy sustainability. However, large-scale application is limited by the complex composition of seawater, high concentration of Cl leading to competing reaction, and severe corrosion of electrode materials. In recent years, extensive research has been conducted to address these challenges. Metal nitrides (MNs) with excellent chemical stability and catalytic properties have emerged as ideal electrocatalyst candidates. This review presents the electrode reactions and basic parameters of the seawater splitting process, and summarizes the types and selection principles of conductive substrates with critical analysis of the design principles for seawater electrocatalysts. The focus is on discussing the properties, synthesis, and design strategies of MN-based electrocatalysts. Finally, we provide an outlook for the future development of MNs in the high-throughput seawater electrolysis field and highlight key issues that require further research and optimization.
用于制氢的电催化高通量海水电解是一项很有前景的绿色能源技术,为环境和能源可持续发展提供了可能性。然而,大规模应用受到海水成分复杂、高浓度氯离子导致竞争反应以及电极材料严重腐蚀的限制。近年来,人们进行了广泛的研究来应对这些挑战。具有优异化学稳定性和催化性能的金属氮化物(MNs)已成为理想的电催化剂候选材料。本文综述了海水分解过程的电极反应和基本参数,总结了导电基底的类型和选择原则,并对海水电催化剂的设计原则进行了批判性分析。重点讨论了基于MN的电催化剂的性能、合成方法和设计策略。最后,我们对MNs在高通量海水电解领域的未来发展进行了展望,并强调了需要进一步研究和优化的关键问题。