选择性
表面等离子共振
光化学
等离子体子
化学
催化作用
热电子
亚硝基苯
氧化还原
纳米颗粒
电子转移
材料科学
纳米技术
电子
无机化学
光电子学
有机化学
物理
量子力学
作者
Xiaoqing Liu,Feifei Meng,Xing Chen,Yuhang Li,Hao Yang,Feng Peng,Xihong Lu,Yexiang Tong,Zhong‐Qun Tian,Jianfeng Li,Ping‐Ping Fang
出处
期刊:iScience
[Cell Press]
日期:2020-04-27
卷期号:23 (5): 101107-101107
被引量:8
标识
DOI:10.1016/j.isci.2020.101107
摘要
Plasmon-assisted chemical transformation holds great potential for solar energy conversion. However, simultaneous enhancement of reactivity and selectivity is still challenging and the mechanism remains mysterious. Herein, we elucidate the localized surface plasmon resonance (LSPR)-induced principles underlying the enhanced activity (∼70%) and selectivity of photoelectrocatalytic redox of nitrobenzene (NB) on Au nanoparticles. Hot carriers selectively accelerate the conversion rate from NB to phenylhydroxylamine (PHA) by ∼14% but suppress the transformation rate from PHA to nitrosobenzene (NSB) by ∼13%. By adding an electron accepter, the as-observed suppression ratio is substantially enlarged up to 43%. Our experiments, supported by in situ surface-enhanced Raman spectroscopy and density functional theory simulations, reveal such particular hot-carrier-induced selectivity is conjointly contributed by the accelerated hot electron transfer and the corresponding residual hot holes. This work will help expand the applications of renewable sunlight in the directional production of value-added chemicals under mild conditions.
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