Zhang Yuchao, Guo Wenxiao, Zhang Yunlu, Wei Wei David
Department of Chemistry and Center for Catalysis, University of Florida, Gainesville, FL, 32611, USA.
Adv Mater. 2021 Nov;33(46):e2006654. doi: 10.1002/adma.202006654. Epub 2021 May 12.
Utilizing plasmon-generated hot carriers to drive chemical reactions has emerged as a popular topic in solar photocatalysis. However, a complete description of the underlying mechanism of hot-carrier transfer in photochemical processes remains elusive, particularly for those involving hot holes. Photoelectrochemistry enables to localize hot holes on photoanodes and hot electrons on photocathodes and thus offers an approach to separately explore the hole-transfer dynamics and electron-transfer dynamics. This review summarizes a comprehensive understanding of both hot-hole and hot-electron transfers from photoelectrochemical studies on plasmonic electrodes. Additionally, working principles and applications of spectroelectrochemistry are discussed for plasmonic materials. It is concluded that photoelectrochemistry provides a powerful toolbox to gain mechanistic insights into plasmonic photocatalysis.
利用等离子体激元产生的热载流子驱动化学反应已成为太阳能光催化领域的一个热门话题。然而,光化学过程中热载流子转移的潜在机制的完整描述仍然难以捉摸,特别是对于那些涉及热空穴的过程。光电化学能够将热空穴定位在光阳极上,将热电子定位在光阴极上,从而提供了一种分别探索空穴转移动力学和电子转移动力学的方法。本文综述了通过对等离激元电极的光电化学研究,对热空穴和热电子转移的全面理解。此外,还讨论了等离激元材料的光谱电化学工作原理和应用。得出的结论是,光电化学为深入了解等离激元光催化的机理提供了一个强大的工具箱。