Low-energy pathways lead to self-healing defects in CsPbBr$_3$

Fuente: arXiv
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Autores principales: Miskin, Kumar, Cao, Yi, Marland, Madaline, Rwaka, Jay, Shaikh, Farhan, Moore, David, Marohn, John, Clancy, Paulette
Formato: Preprint
Publicado: 2024
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author Miskin, Kumar
Cao, Yi
Marland, Madaline
Rwaka, Jay
Shaikh, Farhan
Moore, David
Marohn, John
Clancy, Paulette
author_facet Miskin, Kumar
Cao, Yi
Marland, Madaline
Rwaka, Jay
Shaikh, Farhan
Moore, David
Marohn, John
Clancy, Paulette
contents Self-regulation of free charge carriers in perovskites via Schottky defect formation has been posited as the origin of the well-known defect tolerance of metal halide perovskite materials that are promising candidates for photovoltaic applications, like solar cells. Understanding the mechanisms of self-regulation, here for a representative of more commercially viable all-inorganic perovskites, promises to lead to the fabrication of better-performing solar cell materials with higher efficiencies. We investigated different mechanisms and pathways of the diffusion and recombination of interstitials and vacancies (Schottky pairs) in CsPbBr$_3$. We use Nudged Elastic Band calculations and ab initio-derived pseudopotentials within Quantum ESPRESSO to determine energies of formation, migration, and activation for these defects. Our calculations uncover defect pathways capable of producing an activation energy at or below the value of 0.53~eV observed for the slow, temperature-dependent recovery of light-induced conductivity in CsPbBr$_3$. Our work reveals the existence of a low-energy diffusion pathway involving a concerted "domino effect" interstitial mechanism, with the net result that interstitials can diffuse more readily over long distances than expected. Importantly, this observation suggests that defect self-healing can be promoted if the "domino effect" strategy can be engaged.
format Preprint
id arxiv_https___arxiv_org_abs_2405_13213
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Low-energy pathways lead to self-healing defects in CsPbBr$_3$
Miskin, Kumar
Cao, Yi
Marland, Madaline
Rwaka, Jay
Shaikh, Farhan
Moore, David
Marohn, John
Clancy, Paulette
Materials Science
Computational Physics
Self-regulation of free charge carriers in perovskites via Schottky defect formation has been posited as the origin of the well-known defect tolerance of metal halide perovskite materials that are promising candidates for photovoltaic applications, like solar cells. Understanding the mechanisms of self-regulation, here for a representative of more commercially viable all-inorganic perovskites, promises to lead to the fabrication of better-performing solar cell materials with higher efficiencies. We investigated different mechanisms and pathways of the diffusion and recombination of interstitials and vacancies (Schottky pairs) in CsPbBr$_3$. We use Nudged Elastic Band calculations and ab initio-derived pseudopotentials within Quantum ESPRESSO to determine energies of formation, migration, and activation for these defects. Our calculations uncover defect pathways capable of producing an activation energy at or below the value of 0.53~eV observed for the slow, temperature-dependent recovery of light-induced conductivity in CsPbBr$_3$. Our work reveals the existence of a low-energy diffusion pathway involving a concerted "domino effect" interstitial mechanism, with the net result that interstitials can diffuse more readily over long distances than expected. Importantly, this observation suggests that defect self-healing can be promoted if the "domino effect" strategy can be engaged.
title Low-energy pathways lead to self-healing defects in CsPbBr$_3$
topic Materials Science
Computational Physics
url https://arxiv.org/abs/2405.13213