化学
激发态
光化学
光激发
反应速率常数
反应性(心理学)
光催化
马库斯理论
离域电子
量子化学
电子转移
光子能量
光谱学
反应机理
原子物理学
动力学
光子
催化作用
物理
医学
生物化学
替代医学
有机化学
量子力学
病理
作者
Minglu Sun,Peng Zhou,Shuang Meng,Peng Zhang,Yiming Sun,Chenying Zhou,Shijun Su,Chuan-Shu He,Yang Liu,Heng Zhang,Zhaokun Xiong,Bo Lai
标识
DOI:10.1021/acs.est.4c00472
摘要
Direct photoreduction of FeIII is a widely recognized route for accelerating FeIII/FeII cycle in photo-Fenton chemistry. However, most of the wavelengths covering the full spectral range are insufficient to supply enough photon energy for the direct reduction process. Herein, the hitherto neglected mechanism of FeIII reduction that the FeIII indirect reduction pathway initiated by light energy-dependent reactivity variation and reactive excited state (ES) was explored. Evolution of excited-state FeIII species (*FeIII) resulting from metal-centered charge excitation (MCCE) of FeIII is experimentally verified using pulsed laser femtosecond transient absorption spectroscopy with UV–vis detection and theoretically verified by quantum chemical calculation. Intense photoinduced intravalence charge transition was observed at λ = 380 and 466 nm, revealing quartet 4MCCE and doublet 2MCCE and their exponential processes. Light energy-dependent variation of *FeIII reactivity was kinetically certified by fitting the apparent rate constant of the radical-chain sequence of photo-Fenton reactions. Covalency is found to compensate for the intravalence charge separation following photoexcitation of the metal center in the MCCE state of Fenton photosensitizer. The *FeIII is established as a model, demonstrating the intravalence hole delocalization in the ES can be leveraged for photo-Fenton reaction or other photocatalytic schemes based on electron transfer chemistry.
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