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Transport properties of electron small polarons in a V(2)O(5) cathode of Li-ion batteries: a computational study

Employing the first-principles plane-wave approach, we explored the behavior of electron transport in the V(2)O(5) cathode. Polaron migrations along different crystallographic directions in the presence and absence of Li(+) ions were systematically examined using linear interpolation (LE) and nudged...

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Autores principales: Watthaisong, Panuwat, Jungthawan, Sirichok, Hirunsit, Pussana, Suthirakun, Suwit
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9065376/
https://www.ncbi.nlm.nih.gov/pubmed/35519393
http://dx.doi.org/10.1039/c9ra02923k
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author Watthaisong, Panuwat
Jungthawan, Sirichok
Hirunsit, Pussana
Suthirakun, Suwit
author_facet Watthaisong, Panuwat
Jungthawan, Sirichok
Hirunsit, Pussana
Suthirakun, Suwit
author_sort Watthaisong, Panuwat
collection PubMed
description Employing the first-principles plane-wave approach, we explored the behavior of electron transport in the V(2)O(5) cathode. Polaron migrations along different crystallographic directions in the presence and absence of Li(+) ions were systematically examined using linear interpolation (LE) and nudged elastic band (NEB) methods. We find that the NEB calculations, based on structural optimizations of TS structures, generally exhibit lower hopping barriers than those obtained from the LE calculations. Both methods consistently predict that the [010] hopping, in the presence and absence of a nearby Li(+) ion, is kinetically least favorable since the migration involves displacements of rigid 3-coordinated O atoms. Computations based on the LE method reveal anisotropic polaron mobilities where the estimated hopping frequencies within the layer are approximately one order of magnitude higher than the normal. The prediction based on the LE calculations is consistent with the experimental results. Lithiation dramatically affects the behavior of polaron movement. It significantly increases the reaction energies and hopping barriers due to the strong polaron-ion interaction. In addition, it is predicted that polaron hopping in the V(2)O(5) cathode is non-adiabatic where lithiation has negligible effects on the adiabaticity.
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spelling pubmed-90653762022-05-04 Transport properties of electron small polarons in a V(2)O(5) cathode of Li-ion batteries: a computational study Watthaisong, Panuwat Jungthawan, Sirichok Hirunsit, Pussana Suthirakun, Suwit RSC Adv Chemistry Employing the first-principles plane-wave approach, we explored the behavior of electron transport in the V(2)O(5) cathode. Polaron migrations along different crystallographic directions in the presence and absence of Li(+) ions were systematically examined using linear interpolation (LE) and nudged elastic band (NEB) methods. We find that the NEB calculations, based on structural optimizations of TS structures, generally exhibit lower hopping barriers than those obtained from the LE calculations. Both methods consistently predict that the [010] hopping, in the presence and absence of a nearby Li(+) ion, is kinetically least favorable since the migration involves displacements of rigid 3-coordinated O atoms. Computations based on the LE method reveal anisotropic polaron mobilities where the estimated hopping frequencies within the layer are approximately one order of magnitude higher than the normal. The prediction based on the LE calculations is consistent with the experimental results. Lithiation dramatically affects the behavior of polaron movement. It significantly increases the reaction energies and hopping barriers due to the strong polaron-ion interaction. In addition, it is predicted that polaron hopping in the V(2)O(5) cathode is non-adiabatic where lithiation has negligible effects on the adiabaticity. The Royal Society of Chemistry 2019-06-21 /pmc/articles/PMC9065376/ /pubmed/35519393 http://dx.doi.org/10.1039/c9ra02923k Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Watthaisong, Panuwat
Jungthawan, Sirichok
Hirunsit, Pussana
Suthirakun, Suwit
Transport properties of electron small polarons in a V(2)O(5) cathode of Li-ion batteries: a computational study
title Transport properties of electron small polarons in a V(2)O(5) cathode of Li-ion batteries: a computational study
title_full Transport properties of electron small polarons in a V(2)O(5) cathode of Li-ion batteries: a computational study
title_fullStr Transport properties of electron small polarons in a V(2)O(5) cathode of Li-ion batteries: a computational study
title_full_unstemmed Transport properties of electron small polarons in a V(2)O(5) cathode of Li-ion batteries: a computational study
title_short Transport properties of electron small polarons in a V(2)O(5) cathode of Li-ion batteries: a computational study
title_sort transport properties of electron small polarons in a v(2)o(5) cathode of li-ion batteries: a computational study
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9065376/
https://www.ncbi.nlm.nih.gov/pubmed/35519393
http://dx.doi.org/10.1039/c9ra02923k
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