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Visual Location of Oxygen Vacancies on Bismuth Titanate Nanosheets with Periodic Quantum Well and Promoting H <sub>2</sub> O <sub>2</sub> Photosynthesis

Yuqing Gao, Zhen Zhan, Liping Guo, Zhenzi Li, Songhua Cai, Xuepeng Wang, Mingxia Li, Ying Xie, Wei Zhou

2025Small10 citationsDOI

Abstract

Abstract Oxygen vacancy (OV) defect engineering plays a crucial role in enhancing photocatalytic efficiency. However, the direct visual characterization of oxygen vacancies still remains technically limited. Herein, a bismuth titanate (Bi 4 Ti 3 O 12 , BTO‐OV) model photocatalyst containing oxygen vacancies is constructed through density functional theory (DFT) calculations to reveal the influence mechanism of distinctive periodic quantum well and oxygen vacancies on the charge transfer behavior in BTO. Notably, the distribution of oxygen vacancies is directly observed using the low‐dose integrated differential phase contrast‐scanning transmission electron microscopy (iDPC‐STEM), providing visual evidence for the location of these oxygen vacancies in BTO‐OV. Furthermore, the theoretical calculation results are verified by characterizing the photoelectric properties and conducting performance tests on the hydrogen peroxide (H 2 O 2 ) photosynthesis. Specifically, the oxygen vacancies and distinctive periodic quantum well in BTO‐OV accelerate charge separation, leading to a H 2 O 2 photosynthesis efficiency reaching 5278 µ m g −1 h −1 , which is 5 times that of the original BTO. This work offers theoretical and experimental references for the visual characterization of oxygen vacancies and the improvement of the charge transfer mechanism.

Topics & Concepts

OxygenMaterials scienceOxygen evolutionDensity functional theoryChemical physicsBismuthPhotocatalysisPhotoelectric effectNanotechnologyPhotochemistryPhysical chemistryComputational chemistryChemistryOptoelectronicsCatalysisElectrochemistryElectrodeOrganic chemistryBiochemistryMetallurgyAdvanced Photocatalysis TechniquesElectronic and Structural Properties of OxidesCopper-based nanomaterials and applications