Understanding the phase transition mechanism in the lead halide perovskite CsPbBr3 via theoretical and experimental GIWAXS and Raman spectroscopy

Author:

Hoffman Alexander E. J.1ORCID,Saha Rafikul Ali2ORCID,Borgmans Sander1ORCID,Puech Pascal3ORCID,Braeckevelt Tom1ORCID,Roeffaers Maarten B. J.2ORCID,Steele Julian A.2ORCID,Hofkens Johan4ORCID,Van Speybroeck Veronique1ORCID

Affiliation:

1. Center for Molecular Modeling, Ghent University 1 , Technologiepark 46, 9052 Zwijnaarde, Belgium

2. cMACS, Department of Microbial and Molecular Systems, KU Leuven 2 , Celestijnenlaan 200F, 3001 Leuven, Belgium

3. Centre d’Elaboration des Matériaux et d’Etudes Structurales (CEMES), UPR8011 CNRS, Université Toulouse 3 3 , Rue Jeanne Marvig 29, 31055 Toulouse, France

4. Department of Chemistry, KU Leuven 4 , Celestijnenlaan 200F, 3001 Leuven, Belgium

Abstract

Metal-halide perovskites (MHPs) exhibit excellent properties for application in optoelectronic devices. The bottleneck for their incorporation is the lack of long-term stability such as degradation due to external conditions (heat, light, oxygen, moisture, and mechanical stress), but the occurrence of phase transitions also affects their performance. Structural phase transitions are often influenced by phonon modes. Hence, an insight into both the structure and lattice dynamics is vital to assess the potential of MHPs. In this study, GIWAXS and Raman spectroscopy are applied, supported by density functional theory calculations, to investigate the apparent manifestation of structural phase transitions in the MHP CsPbBr3. Macroscopically, CsPbBr3 undergoes phase transitions between a cubic (α), tetragonal (β), and orthorhombic (γ) phase with decreasing temperature. However, microscopically, it has been argued that only the γ phase exists, while the other phases exist as averages over length and time scales within distinct temperature ranges. Here, direct proof is provided for this conjecture by analyzing both theoretical diffraction patterns and the evolution of the tilting angle of the PbBr6 octahedra from molecular dynamics simulations. Moreover, sound agreement between experimental and theoretical Raman spectra allowed to identify the Raman active phonon modes and to investigate their frequency as a function of temperature. As such, this work increases the understanding of the structure and lattice dynamics of CsPbBr3 and similar MHPs.

Funder

Research Foundation - Flanders

Research Fund of Ghent University

KULeuven Research Fund

Flemish Government

French PIA

Publisher

AIP Publishing

Subject

General Engineering,General Materials Science

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