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Monolithic All-Solid-State High-Voltage Li-Metal Thin-Film Rechargeable Battery

[Image: see text] The substitution of an organic liquid electrolyte with lithium-conducting solid materials is a promising approach to overcome the limitations associated with conventional lithium-ion batteries. These constraints include a reduced electrochemical stability window, high toxicity, fla...

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Autores principales: Madinabeitia, Iñaki, Rikarte, Jokin, Etxebarria, Ane, Baraldi, Giorgio, Fernández-Carretero, Francisco José, Garbayo, Iñigo, Cid, Rosalía, García-Luis, Alberto, Muñoz-Márquez, Miguel Ángel
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9603062/
https://www.ncbi.nlm.nih.gov/pubmed/36311465
http://dx.doi.org/10.1021/acsaem.2c01581
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author Madinabeitia, Iñaki
Rikarte, Jokin
Etxebarria, Ane
Baraldi, Giorgio
Fernández-Carretero, Francisco José
Garbayo, Iñigo
Cid, Rosalía
García-Luis, Alberto
Muñoz-Márquez, Miguel Ángel
author_facet Madinabeitia, Iñaki
Rikarte, Jokin
Etxebarria, Ane
Baraldi, Giorgio
Fernández-Carretero, Francisco José
Garbayo, Iñigo
Cid, Rosalía
García-Luis, Alberto
Muñoz-Márquez, Miguel Ángel
author_sort Madinabeitia, Iñaki
collection PubMed
description [Image: see text] The substitution of an organic liquid electrolyte with lithium-conducting solid materials is a promising approach to overcome the limitations associated with conventional lithium-ion batteries. These constraints include a reduced electrochemical stability window, high toxicity, flammability, and the formation of lithium dendrites. In this way, all-solid-state batteries present themselves as ideal candidates for improving energy density, environmental friendliness, and safety. In particular, all-solid-state configurations allow the introduction of compact, lightweight, high-energy-density batteries, suitable for low-power applications, known as thin-film batteries. Moreover, solid electrolytes typically offer wide electrochemical stability windows, enabling the integration of high-voltage cathodes and permitting the fabrication of higher-energy-density batteries. A high-voltage, all-solid-state lithium-ion thin-film battery composed of LiNi(0.5)Mn(1.5)O(4) cathode, a LiPON solid electrolyte, and a lithium metal anode has been deposited layer by layer on low-cost stainless-steel current collector substrates. The structural and electrochemical properties of each electroactive component of the battery had been analyzed separately prior to the full cell implementation. In addition to a study of the internal solid–solid interface, comparing them was done with two similar cells assembled using conventional lithium foil, one with thin-film solid electrolyte and another one with thin-film solid electrolyte plus a droplet of LP30 liquid electrolyte. The thin-film all-solid state cell developed in this work delivered 80.5 mAh g(–1) in the first cycle at C/20 and after a C-rate test of 25 cycles at C/10, C/5, C/2, and 1C and stabilized its capacity at around 70 mAh g(–1) for another 12 cycles prior to the start of its degradation. This cell reached gravimetric and volumetric energy densities of 333 Wh kg(–1) and 1,212 Wh l(–1), respectively. Overall, this cell showed a better performance than its counterparts assembled with Li foil, highlighting the importance of the battery interface control.
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spelling pubmed-96030622022-10-27 Monolithic All-Solid-State High-Voltage Li-Metal Thin-Film Rechargeable Battery Madinabeitia, Iñaki Rikarte, Jokin Etxebarria, Ane Baraldi, Giorgio Fernández-Carretero, Francisco José Garbayo, Iñigo Cid, Rosalía García-Luis, Alberto Muñoz-Márquez, Miguel Ángel ACS Appl Energy Mater [Image: see text] The substitution of an organic liquid electrolyte with lithium-conducting solid materials is a promising approach to overcome the limitations associated with conventional lithium-ion batteries. These constraints include a reduced electrochemical stability window, high toxicity, flammability, and the formation of lithium dendrites. In this way, all-solid-state batteries present themselves as ideal candidates for improving energy density, environmental friendliness, and safety. In particular, all-solid-state configurations allow the introduction of compact, lightweight, high-energy-density batteries, suitable for low-power applications, known as thin-film batteries. Moreover, solid electrolytes typically offer wide electrochemical stability windows, enabling the integration of high-voltage cathodes and permitting the fabrication of higher-energy-density batteries. A high-voltage, all-solid-state lithium-ion thin-film battery composed of LiNi(0.5)Mn(1.5)O(4) cathode, a LiPON solid electrolyte, and a lithium metal anode has been deposited layer by layer on low-cost stainless-steel current collector substrates. The structural and electrochemical properties of each electroactive component of the battery had been analyzed separately prior to the full cell implementation. In addition to a study of the internal solid–solid interface, comparing them was done with two similar cells assembled using conventional lithium foil, one with thin-film solid electrolyte and another one with thin-film solid electrolyte plus a droplet of LP30 liquid electrolyte. The thin-film all-solid state cell developed in this work delivered 80.5 mAh g(–1) in the first cycle at C/20 and after a C-rate test of 25 cycles at C/10, C/5, C/2, and 1C and stabilized its capacity at around 70 mAh g(–1) for another 12 cycles prior to the start of its degradation. This cell reached gravimetric and volumetric energy densities of 333 Wh kg(–1) and 1,212 Wh l(–1), respectively. Overall, this cell showed a better performance than its counterparts assembled with Li foil, highlighting the importance of the battery interface control. American Chemical Society 2022-09-27 2022-10-24 /pmc/articles/PMC9603062/ /pubmed/36311465 http://dx.doi.org/10.1021/acsaem.2c01581 Text en © 2022 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 Madinabeitia, Iñaki
Rikarte, Jokin
Etxebarria, Ane
Baraldi, Giorgio
Fernández-Carretero, Francisco José
Garbayo, Iñigo
Cid, Rosalía
García-Luis, Alberto
Muñoz-Márquez, Miguel Ángel
Monolithic All-Solid-State High-Voltage Li-Metal Thin-Film Rechargeable Battery
title Monolithic All-Solid-State High-Voltage Li-Metal Thin-Film Rechargeable Battery
title_full Monolithic All-Solid-State High-Voltage Li-Metal Thin-Film Rechargeable Battery
title_fullStr Monolithic All-Solid-State High-Voltage Li-Metal Thin-Film Rechargeable Battery
title_full_unstemmed Monolithic All-Solid-State High-Voltage Li-Metal Thin-Film Rechargeable Battery
title_short Monolithic All-Solid-State High-Voltage Li-Metal Thin-Film Rechargeable Battery
title_sort monolithic all-solid-state high-voltage li-metal thin-film rechargeable battery
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9603062/
https://www.ncbi.nlm.nih.gov/pubmed/36311465
http://dx.doi.org/10.1021/acsaem.2c01581
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