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Main Authors: Liu, Sizhan, Amarasinghe, Sandun, Li, Mo, Chariton, Stella, Prakapenka, Vitali, Ghose, Sanjit K., Yan, Yong, Young, Joshua, Tyson, Trevor A.
Format: Preprint
Published: 2024
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Online Access:https://arxiv.org/abs/2412.20497
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author Liu, Sizhan
Amarasinghe, Sandun
Li, Mo
Chariton, Stella
Prakapenka, Vitali
Ghose, Sanjit K.
Yan, Yong
Young, Joshua
Tyson, Trevor A.
author_facet Liu, Sizhan
Amarasinghe, Sandun
Li, Mo
Chariton, Stella
Prakapenka, Vitali
Ghose, Sanjit K.
Yan, Yong
Young, Joshua
Tyson, Trevor A.
contents Under external stimuli, lead halide perovskites exhibit large atomic fluctuations, impacting optical and electron transport properties that affect device performance in operational settings. However, a thorough understanding of the atomic basis for the underlying structural instability is still absent. Focusing on the model material CsPbBr$_3$, the inherent lattice softness of halide perovskites is elucidated at the atomic level through in-situ single-crystal X-ray diffraction measurements under pressure complemented by atomic level simulations. We identify and explore the nature of the first-order phase transition to a distorted P21/c phase at 1.3 GPa, induced by the sudden Cs-Br bonds breaking. Unlike classical transition metal oxide perovskites, where the internal energy term dominates, we show explicitly that pressure primarily influences the Gibbs free energy for halide perovskites through the pressure-volume term. As such, strategically mitigating bond strains from volume shrinkage is the key to suppressing the first-order behavior for maintaining the coordinates of PbX$_6$ polyhedral upon external perturbation. Our thermodynamic calculation reveals the demand for high entropy in the -T*del-S term, which can be achieved by exploring a broader spectrum of doped A site and B sites in ABX$_3$ systems, enabling continuous structural changes that facilitate recovery from mechanical damage in practical applications.
format Preprint
id arxiv_https___arxiv_org_abs_2412_20497
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Origin of Pressure-Induced Structural Instability in CsPbX$_3$ Photovoltaic Perovskites
Liu, Sizhan
Amarasinghe, Sandun
Li, Mo
Chariton, Stella
Prakapenka, Vitali
Ghose, Sanjit K.
Yan, Yong
Young, Joshua
Tyson, Trevor A.
Materials Science
Under external stimuli, lead halide perovskites exhibit large atomic fluctuations, impacting optical and electron transport properties that affect device performance in operational settings. However, a thorough understanding of the atomic basis for the underlying structural instability is still absent. Focusing on the model material CsPbBr$_3$, the inherent lattice softness of halide perovskites is elucidated at the atomic level through in-situ single-crystal X-ray diffraction measurements under pressure complemented by atomic level simulations. We identify and explore the nature of the first-order phase transition to a distorted P21/c phase at 1.3 GPa, induced by the sudden Cs-Br bonds breaking. Unlike classical transition metal oxide perovskites, where the internal energy term dominates, we show explicitly that pressure primarily influences the Gibbs free energy for halide perovskites through the pressure-volume term. As such, strategically mitigating bond strains from volume shrinkage is the key to suppressing the first-order behavior for maintaining the coordinates of PbX$_6$ polyhedral upon external perturbation. Our thermodynamic calculation reveals the demand for high entropy in the -T*del-S term, which can be achieved by exploring a broader spectrum of doped A site and B sites in ABX$_3$ systems, enabling continuous structural changes that facilitate recovery from mechanical damage in practical applications.
title Origin of Pressure-Induced Structural Instability in CsPbX$_3$ Photovoltaic Perovskites
topic Materials Science
url https://arxiv.org/abs/2412.20497