甲脒
光催化
异质结
材料科学
带隙
半导体
光电子学
铋
氧化还原
钙钛矿(结构)
化学
光化学
生物化学
冶金
结晶学
催化作用
作者
Haowei Huang,Jiwu Zhao,Yijie Du,Chen Zhou,Menglong Zhang,Zhuan Wang,Yuxiang Weng,Jinlin Long,Johan Hofkens,Julian A. Steele,Maarten B. J. Roeffaers
出处
期刊:ACS Nano
[American Chemical Society]
日期:2020-06-23
卷期号:14 (12): 16689-16697
被引量:238
标识
DOI:10.1021/acsnano.0c03146
摘要
Metal halide perovskites with direct band gap and strong light absorption are promising materials for harvesting solar energy; however, their relatively narrow band gap limits their redox ability when used as a photocatalyst. Adding a second semiconductor component with the appropriate band structure offsets can generate a Z-scheme photocatalytic system, taking full advantage of the perovskite's intrinsic properties. In this work, we develop a direct Z-scheme photocatalyst based on formamidinium lead bromide and bismuth tungstate (FAPbBr3/Bi2WO6) with strong redox ability for artificial solar-to-chemical energy conversion. With desirable band offsets and strong joint redox potential, the dual photocatalyst is shown to form a semicoherent heterointerface. Ultrafast transient infrared absorption studies employing selective excitation reveal synergetic photocarrier dynamics and demonstrate Z-scheme charge transfer mechanisms. Under simulated solar irradiation, a large driving force photoredox reaction (∼2.57 eV) of CO2 reduction coupled with benzyl alcohol oxidation to benzaldehyde is achieved on the Z-scheme FAPbBr3/Bi2WO6 photocatalyst, harnessing the full synergetic potential of the combined system.
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