You Bo, Tang Michael T, Tsai Charlie, Abild-Pedersen Frank, Zheng Xiaolin, Li Hong
School of Mechanical and Aerospace Engineering, Nanyang Technological University, Singapore, 639798, Singapore.
SUNCAT Center for Interface Science and Catalysis, Department of Chemical Engineering, Stanford University, CA, 94305, USA.
Adv Mater. 2019 Apr;31(17):e1807001. doi: 10.1002/adma.201807001. Epub 2019 Feb 18.
Electrochemical water splitting driven by sustainable energy such as solar, wind, and tide is attracting ever-increasing attention for sustainable production of clean hydrogen fuel from water. Leveraging these advances requires efficient and earth-abundant electrocatalysts to accelerate the kinetically sluggish hydrogen and oxygen evolution reactions (HER and OER). A large number of advanced water-splitting electrocatalysts have been developed through recent understanding of the electrochemical nature and engineering approaches. Specifically, strain engineering offers a novel route to promote the electrocatalytic HER/OER performances for efficient water splitting. Herein, the recent theoretical and experimental progress on applying strain to enhance heterogeneous electrocatalysts for both HER and OER are reviewed and future opportunities are discussed. A brief introduction of the fundamentals of water-splitting reactions, and the rationalization for utilizing mechanical strain to tune an electrocatalyst is given, followed by a discussion of the recent advances on strain-promoted HER and OER, with special emphasis given to combined theoretical and experimental approaches for determining the optimal straining effect for water electrolysis, along with experimental approaches for creating and characterizing strain in nanocatalysts, particularly emerging 2D nanomaterials. Finally, a vision for a future sustainable hydrogen fuel community based on strain-promoted water electrolysis is proposed.
由太阳能、风能和潮汐能等可持续能源驱动的电化学水分解,正吸引着越来越多的关注,以实现从水中可持续生产清洁氢燃料。利用这些进展需要高效且储量丰富的电催化剂来加速动力学上缓慢的析氢反应和析氧反应(HER和OER)。通过最近对电化学本质和工程方法的理解,已经开发出了大量先进的水分解电催化剂。具体而言,应变工程为提高电催化HER/OER性能以实现高效水分解提供了一条新途径。在此,综述了应用应变来增强用于HER和OER的非均相电催化剂的近期理论和实验进展,并讨论了未来的机遇。简要介绍了水分解反应的基本原理,以及利用机械应变来调节电催化剂的原理,随后讨论了应变促进的HER和OER的近期进展,特别强调了用于确定水电解最佳应变效应的理论和实验相结合的方法,以及在纳米催化剂,特别是新兴的二维纳米材料中产生和表征应变的实验方法。最后,提出了基于应变促进水电解的未来可持续氢燃料领域的愿景。