Welcome to Journal of Synthetic Crystals! Today is Share:

Journal of Synthetic Crystals ›› 2026, Vol. 55 ›› Issue (1): 103-110.DOI: 10.16553/j.cnki.issn1000-985x.2025.0154

• Research Articles • Previous Articles     Next Articles

Optical Properties of All-Inorganic Perovskite Cesium Tin Bromide

LIANG Yongfu1,2(), YANG Yuping1,2, CHENG Xuerui1,2   

  1. 1. School of Electronics and Information,Zhengzhou University of Light Industry,Zhengzhou 450002,China
    2. Henan Key Laboratory of Magnetoelectronic Information Functional Materials,Zhengzhou 450002,China
  • Received:2025-07-20 Online:2026-01-20 Published:2026-02-05

Abstract: Safe and environmentally friendly tin-based perovskite materials are emerging as promising lead-free alternatives due to their stable and excellent properties. This study focuses on the structure-property relationship of the all-inorganic tin-based perovskite CsSnBr3. The structural stability and phase transition behavior of this material over the temperature range from 123 K to 673 K were investigated using variable-temperature X-ray diffraction combined with Rietveld refinement and thermogravimetric analysis. CsSnBr3 exists as the Pm3ˉm phase between 298 K and 673 K, transforms into the P4/mbm phase at 253 K, and finally converts to the Pnma phase at 123 K. Ultraviolet-visible absorption spectroscopy and density functional theory calculations collectively reveal that the material possesses a direct band gap of 1.67 eV. The conduction band minimum is primarily constituted by Sn-5p and Br-4p orbitals, while the valence band maximum originates mainly from Br-4p orbitals. Temperature-dependent photoluminescence (PL) spectra indicate that the PL intensity of CsSnBr3 enhances fourfold at 113 K. This phenomenon is likely attributed to the suppression of phonon scattering at low temperatures, leading to reduced non-radiative recombination. This study provides a solid thermodynamic basis for the development of high-efficiency lead-free perovskite solar cells suitable for high-temperature conditions.

Key words: tin-based perovskite; CsSnBr3; PL spectroscopy; optical property; activation energy; first-principle

CLC Number: