纳米技术
分子
阳极
制作
材料科学
化学计量学
氧化还原
有机分子
有机半导体
半导体
可持续能源
反应机理
光电化学
机制(生物学)
能量转换
有机合成
选择性
太阳能转换
化学能
组合化学
电化学
化学
化学反应
反应条件
催化作用
还原消去
氧化还原
小分子
阴极
光化学
光电化学电池
电子
光催化
作者
Jinghao Wang,Jian Li,Li-Zhu Wu,Zhiyong Tang
摘要
Photoelectrocatalytic (PEC) organic synthesis has emerged as a promising platform for sustainable chemical manufacturing by synergistically integrating light and electrical energy. The fundamental mechanism involves the generation of electron-hole pairs in semiconductor photoelectrodes, where photogenerated holes drive oxidative transformations at the anode and electrons facilitate reductive reactions at the cathode. This approach enables precise control over reaction pathways under mild conditions, offering enhanced energy efficiency, improved selectivity and elimination of stoichiometric oxidants. This review comprehensively summarizes the rapid development of PEC organic synthesis, beginning with its fundamental principles and common photoelectrode fabrication techniques. Recent advances are then outlined across two major domains: the photoanode-mediated oxidation of single molecules (e.g., alcohols, biomass-derived platform chemicals, alkenes, and C─H bonds) and photoelectrochemical cross-coupling reactions for constructing C─X (X = C, N, P, Cl, and Br) bonds. Finally, a forward-looking perspective on critical challenges and future directions are discussed, which will significantly improve the insight for future development of PEC organic synthesis.
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