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Impact of anharmonicity on the carrier mobility of the Pb-free CsSnBr₃ perovskite

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arxiv 2505.20092 v1 pith:H3RLF7GO submitted 2025-05-26 cond-mat.mtrl-sci

Impact of anharmonicity on the carrier mobility of the Pb-free CsSnBr₃ perovskite

classification cond-mat.mtrl-sci
keywords carrierperovskitemobilitiescellscssnbrsolaranharmonicapproximation
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Charge carrier mobilities are critical parameters in halide perovskite solar cells, governing their average carrier velocity under an applied electric field and overall efficiency. Recent advances in first-principles calculations of electron-phonon interactions and carrier mobilities have enabled predictive computations for perovskite solar cells. However, the flexible octahedral frameworks and cationic displacements in these materials challenge the harmonic approximation, leading to significant difficulties in accurately calculating transport properties. To address these issues, we combine temperature-dependent effective potentials with the ab initio Boltzmann transport equations to compute carrier mobilities in a representative lead-free perovskite, CsSnBr$_3$. At room temperature, the electron/hole Hall mobilities in CsSnBr$_3$ are 106/256 cm$^2$/Vs when neglecting anharmonic effects and 59/145 cm$^2$/Vs when included. This overestimation of the harmonic approximation arises from the neglect of scattering coming from soft modes. We provide a workflow for performing first-principles carrier mobility calculations in anharmonic systems, advancing the predictive modeling of perovskite solar cells.

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