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Enhanced photocatalytic CO 2 conversion over 0D/2D CsPbBr 3 /BiOCl S-scheme heterojunction via boosting charge separation.

Fangzheng QiZengsheng GuoYuhan ZhangXue-Na TangYiqiang SunBo XuGuang-Ning LiuCuncheng Li
Published in: Dalton transactions (Cambridge, England : 2003) (2024)
The stable contact of heterogeneous interfaces and the substantial exposure of active sites are crucial for enhancing the photocatalytic performance of semiconductor catalysts. However, most reported two-dimensional (2D)/2D CsPbBr 3 and BiOCl heterostructures are fabricated using electrostatic self-assembly methods, which exhibit significant deficiencies in precise interface quality control and effective active site exposure. In this study, we fabricate a zero-dimensional (0D)/2D CsPbBr 3 /BiOCl heterojunction via a two-step calcination method, achieving an efficient direct S-scheme configuration. Optimizing interfacial contact and band alignment between CsPbBr 3 quantum dots and BiOCl nanosheets enhances cross-plane charge transfer, promoting superior charge separation. This 0D/2D CsPbBr 3 /BiOCl heterojunction exhibits enhanced carrier mobility and high conversion rates without cocatalysts or sacrificial agents. The mechanism underlying the accelerated S-scheme charge transfer is comprehensively elucidated through a combination of analytical techniques and density functional theory (DFT) calculations. This study offers a novel approach for managing charge carrier segregation and mobility in CO 2 reduction photocatalysts.
Keyphrases
  • visible light
  • density functional theory
  • solar cells
  • molecular dynamics
  • quantum dots
  • quality control
  • molecular dynamics simulations
  • liquid chromatography
  • room temperature