On the Ion Coordination and Crystallization of Metal Halide Perovskites by In Situ Dynamic Optical Probing

Author:

Zeng Zixin1,Wang Yunfan1,Xie Yue‐Min2,Zhu Zhaohua3,Yang Yajie4,Ma Yuhui5,Hao Xia4,Lee Chun‐Sing3,Cheng Yuanhang6,Tsang Sai‐Wing1ORCID

Affiliation:

1. Department of Materials Science and Engineering Center of Super‐Diamond and Advance Films (COSDAF) Hong Kong Institute for Clean Energy City University of Hong Kong Hong Kong SAR China

2. Institute of Functional Nano & Soft Materials (FUNSOM) Soochow University Suzhou Jiangsu 215123 China

3. Department of Chemistry Center of Super‐Diamond and Advance Films (COSDAF) City University of Hong Kong Hong Kong SAR China

4. Institute of New Energy and Low‐Carbon Technology Sichuan University Chengdu 610065 China

5. Zhengzhou University Zhengzhou Henan 450001 China

6. School of New Energy Nanjing University of Science and Technology Jiangyin Jiangsu 21443 China

Abstract

AbstractControlling the crystallization to achieve high‐quality homogeneous perovskite film is the key strategy in developing perovskite electronic devices. Here, an in situ dynamic optical probing technique is demonstrated that can monitor the fast crystallization of perovskites and effectively minimize the influence of laser excitation during the measurement. This study finds that the typical static probing technique would damage and induce phase segregation in the perovskite films during the excitation. These issues can be effectively resolved with the dynamic probing approach. It also found that the crystallization between MAPbI3 and MAPbI2Br is strikingly different. In particular, MAPbI2Br suffers from inefficient nucleation during the spin‐coating that strongly affects the uniform crystal growth in the annealing process. The commonly used pre‐heating process is found at a lower temperature not only can further promote the nucleation but also to complete the crystallization of MAPbI2Br. The role of further annealing at a higher temperature is to facilitate ion‐dissociation on the crystal surface to form a passivation layer to stabilize the MAPbI2Br lattices. The device performance is strongly correlated with the film formation mechanism derived from the in situ results. This work demonstrates that the in situ technique can provide deep insight into the crystallization mechanism, and help to understand the growth mechanism of perovskites with different compositions and dimensionalities.

Publisher

Wiley

Subject

General Materials Science,General Chemistry

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