材料科学
半导体
微电子
电场
调制(音乐)
光电子学
载流子
光催化
纳米棒
纳米技术
催化作用
量子力学
物理
化学
哲学
美学
生物化学
作者
Xiaoping Tao,Yuying Gao,Shengyang Wang,Xiaoyu Wang,Yang Liu,Yüe Zhao,Fengtao Fan,Michel Dupuis,Rengui Li,Can Li
标识
DOI:10.1002/aenm.201803951
摘要
Abstract Surface modulation via injection or extraction of charge carriers in microelectric devices has been used to tune the energy band alignment for desired electrical and optical properties, yet not well recognized in photocatalysis field. Here, taking semiconductor bismuth tantalum oxyhalides (Bi 4 TaO 8 X) as examples, chemically inactive molybdenum oxide (MoO 3 ) with a large work function is introduced to qualitatively tune the properties of interfacial charges, achieving an evidently enhanced upward band bending and intensive built‐in electric field. Such a simple charge modulation exhibits a remarkable improvement in photocatalytic water oxidation, reaching an apparent quantum efficiency of 25% at the input wavelength of 420 nm. The validity and generality of surface charge modulating strategy are further demonstrated using other semiconductors (e.g., C 3 N 4 ) and decorators (e.g., V 2 O 5 ). The findings not only provide a promising strategy for rationally manipulating the interfacial built‐in electric field in photocatalysis but also pave the way to learn from microelectronic technologies to construct artificial photosynthesis systems for solar energy conversion.
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