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First-Principles Molecular Dynamics in Metal-Halide Perovskites: Contrasting Generalized Gradient Approximation and Hybrid Functionals

Waldemar Kaiser, Marcelo Carignano, Asma A. Alothman, Edoardo Mosconi, Ali Kachmar, William A. Goddard III, Filippo De Angelis

2021J. Phys. Chem. Lett., 12(49), 11886-1189321cited

Abstract

First-principles molecular dynamics (FPMD) represents a valuable tool to probe dynamical properties of metal-halide perovskites (MHPs) which are key to their success in optoelectronic devices. Most FPMD studies rely on generalized gradient approximation (GGA) functionals for computational efficiency matters, while hybrid functionals, although computationally demanding, are usually needed to accurately describe structural and electronic properties of MHPs. This Letter reports FPMD simulations on CsPbI₃ based on the hybrid PBE0 functional. Our results demonstrate that PBE0 leads to lattice parameters and phonon modes in excellent agreement with experimental data, while GGA results overestimate the lattice parameter and the electronic band gap and underestimate the phonon energies. Our FPMD results also shed light on anharmonic effects and double-well instabilities in the octahedral tilting, highlighting a lowered free energy barrier for PBE0 and farther separated potential wells. Our results suggest that hybrid functionals are required to accurately describe crystal structure, lattice dynamics, and anharmonicity in MHPs.

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Cite this publication
Kaiser, W., Carignano, M., Alothman, A. A., Mosconi, E., Kachmar, A., III, W. A. G., & Angelis, F. D. (2021). First-Principles Molecular Dynamics in Metal-Halide Perovskites: Contrasting Generalized Gradient Approximation and Hybrid Functionals. *J. Phys. Chem. Lett.*, *12*(49), 11886-11893. https://doi.org/10.1021/acs.jpclett.1c03428