On the Mechanism of Solvents Catalyzed Structural Transformation in Metal Halide Perovskites

Author:

Xi Jun1ORCID,Jiang Junke23ORCID,Duim Herman1ORCID,Chen Lijun1,You Jiaxue4,Portale Giuseppe5ORCID,Liu Shengzhong (Frank)6,Tao Shuxia23ORCID,Loi Maria Antonietta1ORCID

Affiliation:

1. Photophysics and OptoElectronics Zernike Institute for Advanced Materials University of Groningen Nijenborgh 4 Groningen 9747 AG The Netherlands

2. Materials Simulation & Modelling Department of Applied Physics and Center for Computational Energy Research Department of Applied Physics Eindhoven University of Technology Eindhoven 5600 MB The Netherlands

3. Center for Computational Energy Research Department of Applied Physics Eindhoven University of Technology Eindhoven 5600 MB The Netherlands

4. Department of Materials Science and Engineering Hong Kong Institute for Clean Energy City University of Hong Kong Kowloon Tong Hong Kong China

5. Physical Chemistry of Polymeric and Nanostructured Materials University of Groningen Nijenborgh 4 Groningen 9747 AG The Netherlands

6. Key Laboratory of Applied Surface and Colloid Chemistry Ministry of Education Shaanxi Key Laboratory for Advanced Energy Devices Shaanxi Engineering Lab for Advanced Energy Technology School of Materials Science & Engineering Shaanxi Normal University Xi'an 710119 China

Abstract

AbstractMetal halide perovskites show the capability of performing structural transformation, allowing the formation of functional heterostructures. Unfortunately, the elusive mechanism governing these transformations limits their technological application. Herein, the mechanism of 2D–3D structural transformation is unraveled as catalyzed by solvents. By combining a spatial‐temporal cation interdiffusivity simulation with experimental findings, it is validated that, protic solvents foster the dissociation degree of formadinium iodide (FAI) via dynamic hydrogen bond, then the stronger hydrogen bond of phenylethylamine (PEA) cation with selected solvents compared to dissociated FA cation facilitates 2D–3D transformation from (PEA)2PbI4 to FAPbI3. It is discovered that, the energy barrier of PEA out‐diffusion and the lateral transition barrier of inorganic slab are diminished. For 2D films the protic solvents catalyze grain centers (GCs) and grain boundaries (GBs) transforme into 3D phases and quasi‐2D phases, respectively. While in the solvent‐free case, GCs transform into 3D–2D heterostructures along the direction perpendicular to the substrate, and most GBs evolve into 3D phases. Finally, memristor devices fabricated using the transformed films uncover that, GBs composed of 3D phases are more prone to ion migration. This work elucidates the fundamental mechanism of structural transformation in metal halide perovskites, allowing their use to fabricate complex heterostructures.

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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