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Electrochemical Testing and Benchmarking of Compositionally Complex Lithium Argyrodite Electrolytes for All-Solid-State Battery Application

  • Jianxuan Du
  • , Jing Lin
  • , Ruizhuo Zhang
  • , Shuo Wang
  • , Sylvio Indris
  • , Helmut Ehrenberg
  • , Aleksandr Kondrakov
  • , Torsten Brezesinski
  • , Florian Strauss

Research output: Contribution to journalArticlepeer-review

11 Scopus citations

Abstract

Ceramic ion conductors play a pivotal role as electrolytes in solid-state batteries (SSBs). Aside from the ionic conductivity, their (electro)chemical stability has a profound effect on the performance. Lithium thiophosphates represent a widely used class of superionic materials, yet they suffer from limited stability and are known to undergo interfacial degradation upon battery cycling. Knowledge of composition-dependent properties is essential to improving upon the stability of thiophosphate solid electrolytes (SEs). In recent years, compositionally complex (multicomponent) and high-entropy lithium argyrodite SEs have been reported, having room-temperature ionic conductivities of σion>10 mS cm−1. In this work, various multi-cationic and -anionic substituted argyrodite SEs are electrochemically tested via cyclic voltammetry and impedance spectroscopy, as well as under operating conditions in SSB cells with layered Ni-rich oxide cathode and indium-lithium anode. Cation substitution is found to negatively affect the electrochemical stability, while anion substitution (introducing Cl/Br and increasing halide content) has a beneficial effect on the cyclability, especially at high current rates.

Original languageEnglish
Article numbere202400112
JournalBatteries and Supercaps
Volume7
Issue number7
DOIs
StatePublished - Jul 2024

Funding

J. L. acknowledges the Fonds der Chemischen Industrie (FCI) for financial support. F. S. is grateful to the Federal Ministry of Education and Research (BMBF) for funding within the project MELLi (03XP0447). This work was partially supported by BASF SE. S. W. acknowledges the Guangdong Basic and Applied Basic Research Foundation (2021A1515110312), the Natural Science Foundation of Hubei Province (2022CFB760), and the Natural Science Foundation of China (52302305). This work contributes to the research performed at CELEST (Center for Electrochemical Energy Storage Ulm‐Karlsruhe). Open Access funding enabled and organized by Projekt DEAL.

Keywords

  • Configurational entropy
  • electrochemical testing
  • interface stability
  • layered Ni-rich oxide cathode
  • solid electrolyte

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