Wu Libo, Yu Luo, Xiao Xin, Zhang Fanghao, Song Shaowei, Chen Shuo, Ren Zhifeng
Department of Physics and Texas Center for Superconductivity (TcSUH), University of Houston, Houston, TX 77204, USA.
Materials Science and Engineering Program, University of Houston, Houston, TX 77204, USA.
Research (Wash D C). 2020 Feb 19;2020:3976278. doi: 10.34133/2020/3976278. eCollection 2020.
Electrochemical water splitting driven by clean and sustainable energy sources to produce hydrogen is an efficient and environmentally friendly energy conversion technology. Water splitting involves hydrogen evolution reaction (HER) and oxygen evolution reaction (OER), in which OER is the limiting factor and has attracted extensive research interest in the past few years. Conventional noble-metal-based OER electrocatalysts like IrO and RuO suffer from the limitations of high cost and scarce availability. Developing innovative alternative nonnoble metal electrocatalysts with high catalytic activity and long-term durability to boost the OER process remains a significant challenge. Among all of the candidates for OER catalysis, self-supported layered double hydroxides (LDHs) have emerged as one of the most promising types of electrocatalysts due to their unique layered structures and high electrocatalytic activity. In this review, we summarize the recent progress on self-supported LDHs and highlight their electrochemical catalytic performance. Specifically, synthesis methods, structural and compositional parameters, and influential factors for optimizing OER performance are discussed in detail. Finally, the remaining challenges facing the development of self-supported LDHs are discussed and perspectives on their potential for use in industrial hydrogen production through water splitting are provided to suggest future research directions.
由清洁可持续能源驱动的电化学水分解制氢是一种高效且环境友好的能量转换技术。水分解涉及析氢反应(HER)和析氧反应(OER),其中OER是限制因素,在过去几年中引起了广泛的研究兴趣。传统的基于贵金属的OER电催化剂,如IrO和RuO,存在成本高和可用性稀缺的局限性。开发具有高催化活性和长期耐久性的创新型非贵金属替代电催化剂以促进OER过程仍然是一项重大挑战。在所有OER催化候选材料中,自支撑层状双氢氧化物(LDHs)因其独特的层状结构和高电催化活性而成为最有前途的电催化剂类型之一。在本综述中,我们总结了自支撑LDHs的最新进展,并突出了它们的电化学催化性能。具体而言,详细讨论了合成方法、结构和组成参数以及优化OER性能的影响因素。最后,讨论了自支撑LDHs发展面临的剩余挑战,并提供了其通过水分解用于工业制氢潜力的展望,以建议未来的研究方向。