Wang Yaoli, Liang Yan, Sheng Huixiang, Wang Jin, Wang Junjie, He Shunhao, Guan Mengdan, Chen Yaqi, Lu Gang
Key Laboratory of Flexible Electronics (KLOFE) and Institute of Advanced Materials (IAM), Nanjing Tech University (NanjingTech), 30 South Puzhu Road, Nanjing, 211816, P. R. China.
National Laboratory of Solid State Microstructures, Nanjing University, Nanjing, 210093, P. R. China.
Chemistry. 2022 Jan 10;28(2):e202103709. doi: 10.1002/chem.202103709. Epub 2021 Dec 4.
Surface plasmon can trigger or accelerate many photochemical reactions, especially useful in energy and environmental industries. Recently, molecular adsorption has proven effective in modulating plasmon-mediated photochemistry, however the realized chemical reactions are limited and the underlying mechanism is still unclear. Herein, by using in situ dark-field optical microscopy, the plasmon-mediated oxidative etching of silver nanoparticles (Ag NPs), a typical hot-hole-driven reaction, is monitored continuously and quantitatively. The presence of thiol or thiophenol molecules is found essential in the silver oxidation. In addition, the rate of silver oxidation is modulated by the choice of different thiol or thiophenol molecules. Compared with the molecules having electron donating groups, the ones having electron accepting groups accelerate the silver oxidation dramatically. The thiol/thiophenol modulation is attributed to the modulation of the charge separation between the Ag NPs and the adsorbed thiol or thiophenol molecules. This work demonstrates the great potential of molecular adsorption in modulating the plasmon-mediated photochemistry, which will pave a new way for developing highly efficient plasmonic photocatalysts.
表面等离子体激元可以引发或加速许多光化学反应,在能源和环境产业中尤为有用。最近,分子吸附已被证明在调节等离子体介导的光化学方面是有效的,然而实现的化学反应是有限的,其潜在机制仍不清楚。在此,通过使用原位暗场光学显微镜,连续且定量地监测了银纳米颗粒(Ag NPs)的等离子体介导的氧化蚀刻,这是一种典型的热空穴驱动反应。发现硫醇或硫酚分子的存在对银的氧化至关重要。此外,银的氧化速率可通过选择不同的硫醇或硫酚分子来调节。与具有供电子基团的分子相比,具有吸电子基团的分子能显著加速银的氧化。硫醇/硫酚调节归因于Ag NPs与吸附的硫醇或硫酚分子之间电荷分离的调节。这项工作证明了分子吸附在调节等离子体介导的光化学方面具有巨大潜力,这将为开发高效的等离子体光催化剂开辟一条新途径。