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Stacking Faults Assist Lithium-Ion Conduction in a Halide-Based Superionic Conductor

[Image: see text] In the pursuit of urgently needed, energy dense solid-state batteries for electric vehicle and portable electronics applications, halide solid electrolytes offer a promising path forward with exceptional compatibility against high-voltage oxide electrodes, tunable ionic conductivit...

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Autores principales: Sebti, Elias, Evans, Hayden A., Chen, Hengning, Richardson, Peter M., White, Kelly M., Giovine, Raynald, Koirala, Krishna Prasad, Xu, Yaobin, Gonzalez-Correa, Eliovardo, Wang, Chongmin, Brown, Craig M., Cheetham, Anthony K., Canepa, Pieremanuele, Clément, Raphaële J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8991002/
https://www.ncbi.nlm.nih.gov/pubmed/35325534
http://dx.doi.org/10.1021/jacs.1c11335
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author Sebti, Elias
Evans, Hayden A.
Chen, Hengning
Richardson, Peter M.
White, Kelly M.
Giovine, Raynald
Koirala, Krishna Prasad
Xu, Yaobin
Gonzalez-Correa, Eliovardo
Wang, Chongmin
Brown, Craig M.
Cheetham, Anthony K.
Canepa, Pieremanuele
Clément, Raphaële J.
author_facet Sebti, Elias
Evans, Hayden A.
Chen, Hengning
Richardson, Peter M.
White, Kelly M.
Giovine, Raynald
Koirala, Krishna Prasad
Xu, Yaobin
Gonzalez-Correa, Eliovardo
Wang, Chongmin
Brown, Craig M.
Cheetham, Anthony K.
Canepa, Pieremanuele
Clément, Raphaële J.
author_sort Sebti, Elias
collection PubMed
description [Image: see text] In the pursuit of urgently needed, energy dense solid-state batteries for electric vehicle and portable electronics applications, halide solid electrolytes offer a promising path forward with exceptional compatibility against high-voltage oxide electrodes, tunable ionic conductivities, and facile processing. For this family of compounds, synthesis protocols strongly affect cation site disorder and modulate Li(+) mobility. In this work, we reveal the presence of a high concentration of stacking faults in the superionic conductor Li(3)YCl(6) and demonstrate a method of controlling its Li(+) conductivity by tuning the defect concentration with synthesis and heat treatments at select temperatures. Leveraging complementary insights from variable temperature synchrotron X-ray diffraction, neutron diffraction, cryogenic transmission electron microscopy, solid-state nuclear magnetic resonance, density functional theory, and electrochemical impedance spectroscopy, we identify the nature of planar defects and the role of nonstoichiometry in lowering Li(+) migration barriers and increasing Li site connectivity in mechanochemically synthesized Li(3)YCl(6). We harness paramagnetic relaxation enhancement to enable (89)Y solid-state NMR and directly contrast the Y cation site disorder resulting from different preparation methods, demonstrating a potent tool for other researchers studying Y-containing compositions. With heat treatments at temperatures as low as 333 K (60 °C), we decrease the concentration of planar defects, demonstrating a simple method for tuning the Li(+) conductivity. Findings from this work are expected to be generalizable to other halide solid electrolyte candidates and provide an improved understanding of defect-enabled Li(+) conduction in this class of Li-ion conductors.
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spelling pubmed-89910022022-04-08 Stacking Faults Assist Lithium-Ion Conduction in a Halide-Based Superionic Conductor Sebti, Elias Evans, Hayden A. Chen, Hengning Richardson, Peter M. White, Kelly M. Giovine, Raynald Koirala, Krishna Prasad Xu, Yaobin Gonzalez-Correa, Eliovardo Wang, Chongmin Brown, Craig M. Cheetham, Anthony K. Canepa, Pieremanuele Clément, Raphaële J. J Am Chem Soc [Image: see text] In the pursuit of urgently needed, energy dense solid-state batteries for electric vehicle and portable electronics applications, halide solid electrolytes offer a promising path forward with exceptional compatibility against high-voltage oxide electrodes, tunable ionic conductivities, and facile processing. For this family of compounds, synthesis protocols strongly affect cation site disorder and modulate Li(+) mobility. In this work, we reveal the presence of a high concentration of stacking faults in the superionic conductor Li(3)YCl(6) and demonstrate a method of controlling its Li(+) conductivity by tuning the defect concentration with synthesis and heat treatments at select temperatures. Leveraging complementary insights from variable temperature synchrotron X-ray diffraction, neutron diffraction, cryogenic transmission electron microscopy, solid-state nuclear magnetic resonance, density functional theory, and electrochemical impedance spectroscopy, we identify the nature of planar defects and the role of nonstoichiometry in lowering Li(+) migration barriers and increasing Li site connectivity in mechanochemically synthesized Li(3)YCl(6). We harness paramagnetic relaxation enhancement to enable (89)Y solid-state NMR and directly contrast the Y cation site disorder resulting from different preparation methods, demonstrating a potent tool for other researchers studying Y-containing compositions. With heat treatments at temperatures as low as 333 K (60 °C), we decrease the concentration of planar defects, demonstrating a simple method for tuning the Li(+) conductivity. Findings from this work are expected to be generalizable to other halide solid electrolyte candidates and provide an improved understanding of defect-enabled Li(+) conduction in this class of Li-ion conductors. American Chemical Society 2022-03-24 2022-04-06 /pmc/articles/PMC8991002/ /pubmed/35325534 http://dx.doi.org/10.1021/jacs.1c11335 Text en © 2022 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Sebti, Elias
Evans, Hayden A.
Chen, Hengning
Richardson, Peter M.
White, Kelly M.
Giovine, Raynald
Koirala, Krishna Prasad
Xu, Yaobin
Gonzalez-Correa, Eliovardo
Wang, Chongmin
Brown, Craig M.
Cheetham, Anthony K.
Canepa, Pieremanuele
Clément, Raphaële J.
Stacking Faults Assist Lithium-Ion Conduction in a Halide-Based Superionic Conductor
title Stacking Faults Assist Lithium-Ion Conduction in a Halide-Based Superionic Conductor
title_full Stacking Faults Assist Lithium-Ion Conduction in a Halide-Based Superionic Conductor
title_fullStr Stacking Faults Assist Lithium-Ion Conduction in a Halide-Based Superionic Conductor
title_full_unstemmed Stacking Faults Assist Lithium-Ion Conduction in a Halide-Based Superionic Conductor
title_short Stacking Faults Assist Lithium-Ion Conduction in a Halide-Based Superionic Conductor
title_sort stacking faults assist lithium-ion conduction in a halide-based superionic conductor
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8991002/
https://www.ncbi.nlm.nih.gov/pubmed/35325534
http://dx.doi.org/10.1021/jacs.1c11335
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