Return
Interface Engineering of Bismuth Vanadate Through Mo,Tb Co-Doping and Fe2TiO5 Integration for Enhanced Solar Water Oxidation
赵
X
Y
S
T
P
DOI:10.1002/adsu.70599.png)
Abstract
En 中文
A synergistic strategy integrating bulk electronic modulation via Mo/Tb co-doping with surface catalytic enhancement via Fe2TiO5 coupling is developed to overcome the intrinsic limitations of BiVO4 photoanodes for photoelectrochemical water splitting. The Mo/Tb‑BVO:Fe2TiO5 photoanode achieves a high photocurrent density of 4.91 mA cm−2 at 1.23 V vs. RHE, representing a 2.6‑fold enhancement over pristine BiVO4. To explore the kinetic characteristics and clarify the mechanism that accounts for the enhanced PEC performance, a combined method encompassing scanning photoelectrochemical microscopy, intensity-modulated photocurrent spectroscopy, and an oxygen evolution reaction model was adopted. By implementing multiple modification strategies, this study overcomes intrinsic limitations in carrier separation, migration, and utilization. The results highlight that metal co-doping and cocatalyst loading are indispensable for rational photoanode construction and high-efficiency solar water splitting.
Keywords:
bismuth vanadate
Fe2TiO5
interfacial charge transfer
photoelectrochemical water splitting
Journal
IF:
6.1
Papers:
1.8K
Citations:
5.7K
