Applied Catalysis2022,Vol.3048.DOI:10.1016/j.apcatb.2021.121012

Stress-induced BiVO4 photoanode for enhanced photoelectrochemical performance

Jiang, Weiyi An, Yang Wang, Zeyan Bao, Xiaolei Zheng, Liren Cheng, Hefeng Liu, Yuanyuan Zheng, Zhaoke Dai, Ying Huang, Baibiao Wang, Minrui Wang, Peng
Applied Catalysis2022,Vol.3048.DOI:10.1016/j.apcatb.2021.121012

Stress-induced BiVO4 photoanode for enhanced photoelectrochemical performance

Jiang, Weiyi 1An, Yang 2Wang, Zeyan 1Bao, Xiaolei 1Zheng, Liren 1Cheng, Hefeng 1Liu, Yuanyuan 1Zheng, Zhaoke 1Dai, Ying 1Huang, Baibiao 1Wang, Minrui 1Wang, Peng1
扫码查看

作者信息

  • 1. Shandong Univ
  • 2. Yangzhou Univ
  • 折叠

Abstract

BiVO4 is a promising and environmental-benign photoanode material. However, the photoelectrochemical properties of BiVO4 are confined to its low charge separation efficiency. Herein, we have developed a simple method to introduce stress into the BiVO4 photoanode via the change of the unit cell volume of VO2 near the phase transition temperature. In this way, the crystal structure of BiVO4 is caused to be distorted and thus improve the photoelectrochemical properties of the BiVO4 photoanode, making the surface photopotential of the BiVO4-V photoanode nearly double that of the bare BiVO4 photoanode. At room temperature, the photocurrent density of the BiVO4-V photoanode is 2.35 times that of the BiVO4 photoanode. Intriguingly, at 85 C, the photocurrent density of the BiVO4-V photoanode is as high as 6.8 times that of the BiVO4 photoanode. Moreover, the photocurrent density of the BiVO4-V photoanode could reach 80% of the theoretical photocurrent density of the BiVO4 photoanode at 85 C in the presence of the sacrificial agent Na2SO3. This work illustrates a new stress engineering strategy to improve the photoelectrochemical properties of BiVO4 photoanodes and is expected to be applicable to other semiconductor photoanodes.

Key words

Photoelectrochemical/BiVO 4 photoanode/Stress engineering/Water oxidation/PHOTOCATALYTIC ACTIVITY/ELECTRONIC-PROPERTIES/THIN-FILM/WATER/FABRICATION/EFFICIENCY/LIMIT

引用本文复制引用

出版年

2022
Applied Catalysis

Applied Catalysis

ISSN:0926-3373
被引量42
参考文献量43
段落导航相关论文