Jung Hyeonjung, Choung Seokhyun, Han Jeong Woo
Department of Chemical Engineering, Pohang University of Science and Technology (POSTECH) Pohang Gyeongbuk 37673 Republic of Korea
Nanoscale Adv. 2021 Oct 19;3(24):6797-6826. doi: 10.1039/d1na00606a. eCollection 2021 Dec 7.
Water electrolysis is a promising solution to convert renewable energy sources to hydrogen as a high-energy-density energy carrier. Although alkaline conditions extend the scope of electrocatalysts beyond precious metal-based materials to earth-abundant materials, the sluggish kinetics of cathodic and anodic reactions (hydrogen and oxygen evolution reactions, respectively) impede the development of practical electrocatalysts that do not use precious metals. This review discusses the rational design of efficient electrocatalysts by exploiting the understanding of alkaline hydrogen evolution reaction and oxygen evolution reaction mechanisms and of the electron structure-activity relationship, as achieved by combining experimental and computational approaches. The enhancement of water splitting not only deals with intrinsic catalytic activity but also includes the aspect of electrical conductivity and stability. Future perspectives to increase the synergy between theory and experiment are also proposed.
水电解是一种将可再生能源转化为氢气(一种高能量密度的能量载体)的有前景的解决方案。尽管碱性条件将电催化剂的范围从贵金属基材料扩展到了储量丰富的材料,但阴极和阳极反应(分别为析氢反应和析氧反应)缓慢的动力学阻碍了不使用贵金属的实用电催化剂的开发。本综述讨论了通过结合实验和计算方法,利用对碱性析氢反应和析氧反应机理以及电子结构-活性关系的理解,对高效电催化剂进行合理设计。水分解的增强不仅涉及本征催化活性,还包括电导率和稳定性方面。还提出了增强理论与实验之间协同作用的未来展望。