4.4 Article

Interfacial charge transfer and photocatalytic activity in a reverse designed Bi2O3/TiO2 core-shell

期刊

FRONTIERS IN ENERGY
卷 15, 期 3, 页码 732-743

出版社

HIGHER EDUCATION PRESS
DOI: 10.1007/s11708-021-0772-x

关键词

photocatalysis; core-shell; heterojunction; H-2; TiO2; Bi2O3

资金

  1. French National Research Agency (ANR) as part of the Investissements d'Avenir program (Labex NanoSaclay) through project Z-scheme [ANR-10-LABX-0035]
  2. Agence Nationale de la Recherche (ANR) through the UpPhotoCat project
  3. Departement de Chimie de la Faculte des Sciences d'Orsay de l'Universite Paris-Saclay

向作者/读者索取更多资源

This study investigates the electronic and photocatalytic properties of core-shell heterojunctions photocatalysts with reversible configuration of TiO2 and Bi2O3 layers. The research shows that in the optimal core-shell design, Bi2O3 collects holes from TiO2, leaving electrons free to react and increasing the photocatalytic efficiency by 5 times towards H-2 generation. The results provide new insights into the importance of designing and elaborating optimal heterojunctions based on the photocatalyst system to improve photocatalytic activity.
In this study, the electronic and photocatalytic properties of core-shell heterojunctions photocatalysts with reversible configuration of TiO2 and Bi2O3 layers were studied. The core-shell nanostructure, obtained by efficient control of the sol-gel polymerization and impregnation method of variable precursors of semiconductors, makes it possible to study selectively the role of the interfacial charge transfer in each configuration. The morphological, optical, and chemical composition of the core-shell nanostructures were characterized by high-resolution transmission electron microscopy, UV-visible spectroscopy and X-ray photoelectron spectroscopy. The results show the formation of homogenous TiO2 anatase and Bi2O3 layers with a thickness of around 10 and 8 nm, respectively. The interfacial charge carrier dynamic was tracked using time resolved microwave conductivity and transition photocurrent density. The charge transfer, their density, and lifetime were found to rely on the layout layers in the core-shell nanostructure. In optimal core-shell design, Bi2O3 collects holes from TiO2, leaving electrons free to react and increase by 5 times the photocatalytic efficiency toward H-2 generation. This study provides new insight into the importance of the design and elaboration of optimal heterojunction based on the photocatalyst system to improve the photocatalytic activity.

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