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Crystal Structures and Phase Stability of the Li(2)S–P(2)S(5) System from First Principles

[Image: see text] The Li(2)S–P(2)S(5) pseudo-binary system has been a valuable source of promising superionic conductors, with α-Li(3)PS(4), β-Li(3)PS(4), HT-Li(7)PS(6), and Li(7)P(3)S(11) having excellent room-temperature Li-ion conductivity >0.1 mS/cm. The metastability of these phases at ambie...

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Autores principales: Kam, Ronald L., Jun, KyuJung, Barroso-Luque, Luis, Yang, Julia H., Xie, Fengyu, Ceder, Gerbrand
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10653090/
https://www.ncbi.nlm.nih.gov/pubmed/38027543
http://dx.doi.org/10.1021/acs.chemmater.3c01793
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author Kam, Ronald L.
Jun, KyuJung
Barroso-Luque, Luis
Yang, Julia H.
Xie, Fengyu
Ceder, Gerbrand
author_facet Kam, Ronald L.
Jun, KyuJung
Barroso-Luque, Luis
Yang, Julia H.
Xie, Fengyu
Ceder, Gerbrand
author_sort Kam, Ronald L.
collection PubMed
description [Image: see text] The Li(2)S–P(2)S(5) pseudo-binary system has been a valuable source of promising superionic conductors, with α-Li(3)PS(4), β-Li(3)PS(4), HT-Li(7)PS(6), and Li(7)P(3)S(11) having excellent room-temperature Li-ion conductivity >0.1 mS/cm. The metastability of these phases at ambient temperature motivates a study to quantify their thermodynamic accessibility. Through calculating the electronic, configurational, and vibrational sources of free energy from first principles, a phase diagram of the crystalline Li(2)S–P(2)S(5) space is constructed. New ground-state orderings are proposed for α-Li(3)PS(4), HT-Li(7)PS(6), LT-Li(7)PS(6), and Li(7)P(3)S(11). Well-established phase stability trends from experiments are recovered, such as polymorphic phase transitions in Li(7)PS(6) and Li(3)PS(4), and the instability of Li(7)P(3)S(11) at high temperature. At ambient temperature, it is predicted that all superionic conductors in this space are indeed metastable but thermodynamically accessible. Vibrational and configurational sources of entropy are shown to be essential toward describing the stability of superionic conductors. New details of the Li sublattices are revealed and are found to be crucial toward accurately predicting configurational entropy. All superionic conductors contain significant configurational entropy, which suggests an inherent correlation between fast Li diffusion and thermodynamic stability arising from the configurational disorder.
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spelling pubmed-106530902023-11-16 Crystal Structures and Phase Stability of the Li(2)S–P(2)S(5) System from First Principles Kam, Ronald L. Jun, KyuJung Barroso-Luque, Luis Yang, Julia H. Xie, Fengyu Ceder, Gerbrand Chem Mater [Image: see text] The Li(2)S–P(2)S(5) pseudo-binary system has been a valuable source of promising superionic conductors, with α-Li(3)PS(4), β-Li(3)PS(4), HT-Li(7)PS(6), and Li(7)P(3)S(11) having excellent room-temperature Li-ion conductivity >0.1 mS/cm. The metastability of these phases at ambient temperature motivates a study to quantify their thermodynamic accessibility. Through calculating the electronic, configurational, and vibrational sources of free energy from first principles, a phase diagram of the crystalline Li(2)S–P(2)S(5) space is constructed. New ground-state orderings are proposed for α-Li(3)PS(4), HT-Li(7)PS(6), LT-Li(7)PS(6), and Li(7)P(3)S(11). Well-established phase stability trends from experiments are recovered, such as polymorphic phase transitions in Li(7)PS(6) and Li(3)PS(4), and the instability of Li(7)P(3)S(11) at high temperature. At ambient temperature, it is predicted that all superionic conductors in this space are indeed metastable but thermodynamically accessible. Vibrational and configurational sources of entropy are shown to be essential toward describing the stability of superionic conductors. New details of the Li sublattices are revealed and are found to be crucial toward accurately predicting configurational entropy. All superionic conductors contain significant configurational entropy, which suggests an inherent correlation between fast Li diffusion and thermodynamic stability arising from the configurational disorder. American Chemical Society 2023-10-23 /pmc/articles/PMC10653090/ /pubmed/38027543 http://dx.doi.org/10.1021/acs.chemmater.3c01793 Text en © 2023 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Kam, Ronald L.
Jun, KyuJung
Barroso-Luque, Luis
Yang, Julia H.
Xie, Fengyu
Ceder, Gerbrand
Crystal Structures and Phase Stability of the Li(2)S–P(2)S(5) System from First Principles
title Crystal Structures and Phase Stability of the Li(2)S–P(2)S(5) System from First Principles
title_full Crystal Structures and Phase Stability of the Li(2)S–P(2)S(5) System from First Principles
title_fullStr Crystal Structures and Phase Stability of the Li(2)S–P(2)S(5) System from First Principles
title_full_unstemmed Crystal Structures and Phase Stability of the Li(2)S–P(2)S(5) System from First Principles
title_short Crystal Structures and Phase Stability of the Li(2)S–P(2)S(5) System from First Principles
title_sort crystal structures and phase stability of the li(2)s–p(2)s(5) system from first principles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10653090/
https://www.ncbi.nlm.nih.gov/pubmed/38027543
http://dx.doi.org/10.1021/acs.chemmater.3c01793
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