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Unraveling the Antisolvent Bathing Effect on CsPbI<sub>3</sub> Crystallization under Ambient Conditions
15
Citations
41
References
2022
Year
EngineeringCrystal Growth TechnologyOrganic Solar CellHalide PerovskitesChemistryPhotovoltaicsAntisolvent Bathing EffectChemical EngineeringAbstract Antisolvent TreatmentSolar CellsSolidificationCrystal FormationMaterials ScienceCrystal MaterialAmbient ConditionsPerovskite Materials‐Antisolvent AdductLead-free PerovskitesCrystallographyMaterial AnalysisPerovskite Solar CellCspbi 3Functional MaterialsSolar Cell Materials
Abstract Antisolvent treatment has been developed to effectively fabricate dimethylammonium‐iodide (DMAI)‐assisted CsPbI 3 perovskite solar cells (PSC) under moisture conditions. However, a clear understanding of its effect on the crystallization mechanism is still elusive. Here, the antisolvent bathing effect on DMAI‐assisted CsPbI 3 crystallization is investigated under ambient conditions. For films bathed into antisolvents with Lewis basic oxygen (i.e., diethyl ether, anisole, ethyl acetate, and methyl acetate), rapid crystallization kinetics are observed due to the interaction between Cs 4 PbI 6 and antisolvent in the form of the adduct. The Cs 4 PbI 6 ‐antisolvent adduct lowers the transformation energy barrier, thereby enabling immediate phase transformation to CsPbI 3 as soon as DMAPbI 3 is decomposed. Based on this observation, a new crystallization mechanism is proposed for DMAI‐assisted CsPbI 3 in which Cs 4 PbI 6 , instead of DMAPbI 3 , plays the role of the predominant phase of crystallization. Accelerated crystallization due to anisole antisolvent bathing results in a uniform film morphology and better coverage with fewer defects and pinholes. This enhances the power conversion efficiency of the n‐i‐p‐structured PSCs based on anisole‐bathed CsPbI 3 to 18.84%, even under moisture conditions.
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