Revealing Unusual Bandgap Shifts with Temperature and Bandgap Renormalization Effect in Phase‐Stabilized Metal Halide Perovskite Thin Films

Author:

Zhang Haochen12,Bi Zhixuan1,Zhai Zehua1,Gao Han3,Liu Yuwei4,Jin Meiling4,Ye Meng5,Li Xuanzhang1,Liu Haowen1,Zhang Yuegang1,Li Xiang4,Tan Hairen36,Xu Yong178,Yang Luyi1278ORCID

Affiliation:

1. State Key Laboratory of Low Dimensional Quantum Physics Department of Physics Tsinghua University Beijing 100084 China

2. Department of Physics University of Toronto Toronto Ontario M5S 1A7 Canada

3. National Laboratory of Solid State Microstructures Collaborative Innovation Center of Advanced Microstructures Jiangsu Key Laboratory of Artificial Functional Materials College of Engineering and Applied Sciences Nanjing University Nanjing 210093 China

4. Center for Quantum Physics School of Physics, Beijing Institute of Technology Beijing 100081 China

5. Graduate School of China Academy of Engineering Physics Beijing 100193 China

6. Frontiers Science Center for Critical Earth Material Cycling Nanjing University Nanjing 210093 China

7. Frontier Science Center for Quantum Information Beijing 100084 China

8. Collaborative Innovation Center of Quantum Matter Beijing 100084 China

Abstract

AbstractHybrid organic–inorganic metal halide perovskites are emerging materials in photovoltaics, whose bandgap is one of the most crucial parameters governing their light‐harvesting performance. This work presents the temperature and photocarrier density dependence of the bandgap in two phase‐stabilized perovskite thin films (MA0.3FA0.7PbI3 and MA0.3FA0.7Pb0.5Sn0.5I3) using photoluminescence and absorption spectroscopy. Contrasting bandgap shifts with temperature are observed between the two perovskites. Using X‐ray diffraction and in situ high‐pressure photoluminescence spectroscopy, it is shown that thermal expansion plays only a minor role in the large bandgap blueshift, which is attributed to the enhanced structural stability of the samples. The first‐principles calculations further demonstrate the significant impact of thermally induced lattice distortions on the bandgap widening. It is proposed that the anomalous trends are caused by the competition between static and dynamic distortions. Additionally, both the bandgap renormalization and band‐filling effects are directly observed for the first time in fluence‐dependent photoluminescence measurements and are employed to estimate the exciton effective mass. The results provide new insights into the basic understanding of thermal and charge‐accumulation effects on the band structure of hybrid perovskite thin films.

Funder

National Key Research and Development Program of China

University of Toronto

National Natural Science Foundation of China

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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