Solid-State Li-Ion Batteries Operating at Room Temperature Using New Borohydride Argyrodite Electrolytes

Using a new class of (BH<sub>4</sub>)<sup>−</sup> substituted argyrodite Li<sub>6</sub>PS<sub>5</sub><i>Z</i><sub>0.83</sub>(BH<sub>4</sub>)<sub>0.17</sub>, (<i>Z</i> = Cl, I) solid electrolyt...

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Main Authors: Anh Ha Dao, Pedro López-Aranguren, Junxian Zhang, Fermín Cuevas, Michel Latroche
Format: Article
Language:English
Published: MDPI AG 2020-09-01
Series:Materials
Subjects:
Online Access:https://www.mdpi.com/1996-1944/13/18/4028
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spelling doaj-9aa23890b5ab4bc8a56750f29737aee22020-11-25T03:21:56ZengMDPI AGMaterials1996-19442020-09-01134028402810.3390/ma13184028Solid-State Li-Ion Batteries Operating at Room Temperature Using New Borohydride Argyrodite ElectrolytesAnh Ha Dao0Pedro López-Aranguren1Junxian Zhang2Fermín Cuevas3Michel Latroche4University Paris Est Creteil, CNRS, ICMPE, UMR7182, 7182, 2 rue Henri Dunant, F-94320 Thiais, FranceUniversity Paris Est Creteil, CNRS, ICMPE, UMR7182, 7182, 2 rue Henri Dunant, F-94320 Thiais, FranceUniversity Paris Est Creteil, CNRS, ICMPE, UMR7182, 7182, 2 rue Henri Dunant, F-94320 Thiais, FranceUniversity Paris Est Creteil, CNRS, ICMPE, UMR7182, 7182, 2 rue Henri Dunant, F-94320 Thiais, FranceUniversity Paris Est Creteil, CNRS, ICMPE, UMR7182, 7182, 2 rue Henri Dunant, F-94320 Thiais, FranceUsing a new class of (BH<sub>4</sub>)<sup>−</sup> substituted argyrodite Li<sub>6</sub>PS<sub>5</sub><i>Z</i><sub>0.83</sub>(BH<sub>4</sub>)<sub>0.17</sub>, (<i>Z</i> = Cl, I) solid electrolyte, Li-metal solid-state batteries operating at room temperature have been developed. The cells were made by combining the modified argyrodite with an In-Li anode and two types of cathode: an oxide, Li<i><sub>x</sub></i><i>M</i>O<sub>2</sub> (<i>M</i> = ⅓ Ni, ⅓ Mn, ⅓ Co; so called NMC) and a titanium disulfide, TiS<sub>2</sub>. The performance of the cells was evaluated through galvanostatic cycling and Alternating Current AC electrochemical impedance measurements. Reversible capacities were observed for both cathodes for at least tens of cycles. However, the high-voltage oxide cathode cell shows lower reversible capacity and larger fading upon cycling than the sulfide one. The AC impedance measurements revealed an increasing interfacial resistance at the cathode side for the oxide cathode inducing the capacity fading. This resistance was attributed to the intrinsic poor conductivity of NMC and interfacial reactions between the oxide material and the argyrodite electrolyte. On the contrary, the low interfacial resistance of the TiS<sub>2</sub> cell during cycling evidences a better chemical compatibility between this active material and substituted argyrodites, allowing full cycling of the cathode material, 240 mAhg<sup>−1</sup>, for at least 35 cycles with a coulombic efficiency above 97%.https://www.mdpi.com/1996-1944/13/18/4028solid-state batteriesargyroditesionic conductivitysolid electrolytes
collection DOAJ
language English
format Article
sources DOAJ
author Anh Ha Dao
Pedro López-Aranguren
Junxian Zhang
Fermín Cuevas
Michel Latroche
spellingShingle Anh Ha Dao
Pedro López-Aranguren
Junxian Zhang
Fermín Cuevas
Michel Latroche
Solid-State Li-Ion Batteries Operating at Room Temperature Using New Borohydride Argyrodite Electrolytes
Materials
solid-state batteries
argyrodites
ionic conductivity
solid electrolytes
author_facet Anh Ha Dao
Pedro López-Aranguren
Junxian Zhang
Fermín Cuevas
Michel Latroche
author_sort Anh Ha Dao
title Solid-State Li-Ion Batteries Operating at Room Temperature Using New Borohydride Argyrodite Electrolytes
title_short Solid-State Li-Ion Batteries Operating at Room Temperature Using New Borohydride Argyrodite Electrolytes
title_full Solid-State Li-Ion Batteries Operating at Room Temperature Using New Borohydride Argyrodite Electrolytes
title_fullStr Solid-State Li-Ion Batteries Operating at Room Temperature Using New Borohydride Argyrodite Electrolytes
title_full_unstemmed Solid-State Li-Ion Batteries Operating at Room Temperature Using New Borohydride Argyrodite Electrolytes
title_sort solid-state li-ion batteries operating at room temperature using new borohydride argyrodite electrolytes
publisher MDPI AG
series Materials
issn 1996-1944
publishDate 2020-09-01
description Using a new class of (BH<sub>4</sub>)<sup>−</sup> substituted argyrodite Li<sub>6</sub>PS<sub>5</sub><i>Z</i><sub>0.83</sub>(BH<sub>4</sub>)<sub>0.17</sub>, (<i>Z</i> = Cl, I) solid electrolyte, Li-metal solid-state batteries operating at room temperature have been developed. The cells were made by combining the modified argyrodite with an In-Li anode and two types of cathode: an oxide, Li<i><sub>x</sub></i><i>M</i>O<sub>2</sub> (<i>M</i> = ⅓ Ni, ⅓ Mn, ⅓ Co; so called NMC) and a titanium disulfide, TiS<sub>2</sub>. The performance of the cells was evaluated through galvanostatic cycling and Alternating Current AC electrochemical impedance measurements. Reversible capacities were observed for both cathodes for at least tens of cycles. However, the high-voltage oxide cathode cell shows lower reversible capacity and larger fading upon cycling than the sulfide one. The AC impedance measurements revealed an increasing interfacial resistance at the cathode side for the oxide cathode inducing the capacity fading. This resistance was attributed to the intrinsic poor conductivity of NMC and interfacial reactions between the oxide material and the argyrodite electrolyte. On the contrary, the low interfacial resistance of the TiS<sub>2</sub> cell during cycling evidences a better chemical compatibility between this active material and substituted argyrodites, allowing full cycling of the cathode material, 240 mAhg<sup>−1</sup>, for at least 35 cycles with a coulombic efficiency above 97%.
topic solid-state batteries
argyrodites
ionic conductivity
solid electrolytes
url https://www.mdpi.com/1996-1944/13/18/4028
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