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Synthesis of Sulfide Solid Electrolytes through the Liquid Phase: Optimization of the Preparation Conditions

[Image: see text] All-solid-state lithium batteries using inorganic sulfide solid electrolytes have good safety properties and high rate capabilities as expected for a next-generation battery. Presently, conventional preparation methods such as mechanical milling and/or solid-phase synthesis need a...

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Autores principales: Yamamoto, Kentaro, Takahashi, Masakuni, Ohara, Koji, Phuc, Nguyen Huu Huy, Yang, Seunghoon, Watanabe, Toshiki, Uchiyama, Tomoki, Sakuda, Atsushi, Hayashi, Akitoshi, Tatsumisago, Masahiro, Muto, Hiroyuki, Matsuda, Atsunori, Uchimoto, Yoshiharu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2020
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7557990/
https://www.ncbi.nlm.nih.gov/pubmed/33073156
http://dx.doi.org/10.1021/acsomega.0c04307
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author Yamamoto, Kentaro
Takahashi, Masakuni
Ohara, Koji
Phuc, Nguyen Huu Huy
Yang, Seunghoon
Watanabe, Toshiki
Uchiyama, Tomoki
Sakuda, Atsushi
Hayashi, Akitoshi
Tatsumisago, Masahiro
Muto, Hiroyuki
Matsuda, Atsunori
Uchimoto, Yoshiharu
author_facet Yamamoto, Kentaro
Takahashi, Masakuni
Ohara, Koji
Phuc, Nguyen Huu Huy
Yang, Seunghoon
Watanabe, Toshiki
Uchiyama, Tomoki
Sakuda, Atsushi
Hayashi, Akitoshi
Tatsumisago, Masahiro
Muto, Hiroyuki
Matsuda, Atsunori
Uchimoto, Yoshiharu
author_sort Yamamoto, Kentaro
collection PubMed
description [Image: see text] All-solid-state lithium batteries using inorganic sulfide solid electrolytes have good safety properties and high rate capabilities as expected for a next-generation battery. Presently, conventional preparation methods such as mechanical milling and/or solid-phase synthesis need a long time to provide a small amount of the product, and they have difficult in supplying a sufficient amount to meet the demand. Hence, liquid-phase synthesis methods have been developed for large-scale synthesis. However, the ionic conductivity of sulfide solid electrolytes prepared via liquid-phase synthesis is typically lower than that prepared via solid-phase synthesis. In this study, we have controlled three factors: (1) shaking time, (2) annealing temperature, and (3) annealing time. The factors influencing lithium ionic conductivity of Li(3)PS(4) prepared via liquid-phase synthesis were quantitatively evaluated using high-energy X-ray diffraction (XRD) measurement coupled with pair distribution function (PDF) analysis. It was revealed from PDF analysis that the amount of Li(2)S that cannot be detected by Raman spectroscopy or XRD decreased the ionic conductivity. Furthermore, it was revealed that the ionic conductivity of Li(3)PS(4) is dominated by other parameters, such as remaining solvent in the sample and high crystallinity of the sample.
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spelling pubmed-75579902020-10-16 Synthesis of Sulfide Solid Electrolytes through the Liquid Phase: Optimization of the Preparation Conditions Yamamoto, Kentaro Takahashi, Masakuni Ohara, Koji Phuc, Nguyen Huu Huy Yang, Seunghoon Watanabe, Toshiki Uchiyama, Tomoki Sakuda, Atsushi Hayashi, Akitoshi Tatsumisago, Masahiro Muto, Hiroyuki Matsuda, Atsunori Uchimoto, Yoshiharu ACS Omega [Image: see text] All-solid-state lithium batteries using inorganic sulfide solid electrolytes have good safety properties and high rate capabilities as expected for a next-generation battery. Presently, conventional preparation methods such as mechanical milling and/or solid-phase synthesis need a long time to provide a small amount of the product, and they have difficult in supplying a sufficient amount to meet the demand. Hence, liquid-phase synthesis methods have been developed for large-scale synthesis. However, the ionic conductivity of sulfide solid electrolytes prepared via liquid-phase synthesis is typically lower than that prepared via solid-phase synthesis. In this study, we have controlled three factors: (1) shaking time, (2) annealing temperature, and (3) annealing time. The factors influencing lithium ionic conductivity of Li(3)PS(4) prepared via liquid-phase synthesis were quantitatively evaluated using high-energy X-ray diffraction (XRD) measurement coupled with pair distribution function (PDF) analysis. It was revealed from PDF analysis that the amount of Li(2)S that cannot be detected by Raman spectroscopy or XRD decreased the ionic conductivity. Furthermore, it was revealed that the ionic conductivity of Li(3)PS(4) is dominated by other parameters, such as remaining solvent in the sample and high crystallinity of the sample. American Chemical Society 2020-09-29 /pmc/articles/PMC7557990/ /pubmed/33073156 http://dx.doi.org/10.1021/acsomega.0c04307 Text en This is an open access article published under an ACS AuthorChoice License (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) , which permits copying and redistribution of the article or any adaptations for non-commercial purposes.
spellingShingle Yamamoto, Kentaro
Takahashi, Masakuni
Ohara, Koji
Phuc, Nguyen Huu Huy
Yang, Seunghoon
Watanabe, Toshiki
Uchiyama, Tomoki
Sakuda, Atsushi
Hayashi, Akitoshi
Tatsumisago, Masahiro
Muto, Hiroyuki
Matsuda, Atsunori
Uchimoto, Yoshiharu
Synthesis of Sulfide Solid Electrolytes through the Liquid Phase: Optimization of the Preparation Conditions
title Synthesis of Sulfide Solid Electrolytes through the Liquid Phase: Optimization of the Preparation Conditions
title_full Synthesis of Sulfide Solid Electrolytes through the Liquid Phase: Optimization of the Preparation Conditions
title_fullStr Synthesis of Sulfide Solid Electrolytes through the Liquid Phase: Optimization of the Preparation Conditions
title_full_unstemmed Synthesis of Sulfide Solid Electrolytes through the Liquid Phase: Optimization of the Preparation Conditions
title_short Synthesis of Sulfide Solid Electrolytes through the Liquid Phase: Optimization of the Preparation Conditions
title_sort synthesis of sulfide solid electrolytes through the liquid phase: optimization of the preparation conditions
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7557990/
https://www.ncbi.nlm.nih.gov/pubmed/33073156
http://dx.doi.org/10.1021/acsomega.0c04307
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