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Nature of the band gap of halide perovskites <i>ABX</i> <sub>3</sub> ( <i>A</i> = CH <sub>3</sub> NH <sub>3</sub> , Cs; <i>B</i> = Sn, Pb; <i>X</i> = Cl, Br, I): First-principles calculations
180
Citations
29
References
2015
Year
First-principles CalculationsEngineeringHalide PerovskitesChemistryElectronic StructureBand GapAbx3 Perovskite MaterialsQuantum MaterialsMaterials SciencePhysicsNatural Band OffsetsPerovskite MaterialsLead-free PerovskitesCrystallographySolid-state PhysicPerovskite Solar CellNatural SciencesApplied PhysicsCondensed Matter Physics
The electronic structures of cubic structure of ABX3(A=CH3NH3, Cs; B=Sn, Pb; X=Cl, Br, I) are analyzed by density functional theory using the Perdew–Burke–Ernzerhof exchange–correlation functional and using the Heyd–Scuseria–Ernzerhof hybrid functional. The valence band maximum (VBM) is found to be made up by an antibonding hybridization of B s and X p states, whereas bands made up by the π antibonding of B p and X p states dominates the conduction band minimum (CBM). The changes of VBM, CBM, and band gap with ion B and X are then systematically summarized. The natural band offsets of ABX3 are partly given. We also found for all the ABX3 perovskite materials in this study, the bandgap increases with an increasing lattice parameter. This phenomenon has good consistency with the experimental results.
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