4.7 Article

Controllable conduction band-edge reconfiguration in quasi-2D perovskites enabled by dimensional engineering for encouraging electron-hole separation

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CHEMICAL ENGINEERING JOURNAL
卷 465, 期 -, 页码 -

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ELSEVIER SCIENCE SA
DOI: 10.1016/j.cej.2023.142866

关键词

Dimensional engineering; Band-edge reconfiguration; Large-dipole-moment organic spacer; Electron-hole separation

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Generally, the band-edge configurations of ABX3 perovskite are constructed by the electronic states of B and X ions, and A-site cation has no significant contribution to the band edge. However, through dimensional engineering in quasi-2D Dion-Jacobson alpha-CsPbI3 perovskites, the controllable conduction band (CB) edge reconfiguration is achieved by designing the organic chain length and inorganic layer numbers. This reconfiguration enables encouraged carrier separation and in-plane transfer in quasi-2D perovskites, and it is highly meaningful for the exploration of advanced perovskites for efficient solar cells.
Generally, the band-edge configurations of ABX3 perovskite (where A is MA+/FA+/Cs+ cation, B represents Pb2+ or Sn2+, and X is halogen, respectively) are constructed by the electronic states of B and X ions, implying that Asite cation has no significant contribution to the band edge. In current work, through first-principles calculation, we report the controllable conduction band (CB) edge reconfiguration of quasi-2D Dion-Jacobson alpha-CsPbI3 perovskites enabled by dimensional engineering for making A-site cations affect perovskite CB edge, which is based on rationally designed organic chain length (m) of A-site organic spacer cations and inorganic layer numbers (n). It is discovered that the energy level of organic CB would be moved up with the increase of m, and that of inorganic CB would be shifted down with the raise of n, allowing the dimensional engineering of quasi-2D perovskites with controllable CB-edge configuration. Consequently, the achieved CB-edge reconfiguration could endow the quasi-2D perovskites with encouraged carrier separation and in-plane transfer. The discovery of CBedge reconfiguration in quasi-2D perovskites by dimensional engineering, which is highly meaningful to direct the exploration of advanced perovskites for efficient solar cells.

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