4.6 Article

Investigation of Polymer/Ceramic Composite Solid Electrolyte System: The Case of PEO/LGPS Composite Electrolytes

Journal

ACS SUSTAINABLE CHEMISTRY & ENGINEERING
Volume 9, Issue 34, Pages 11314-11322

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acssuschemeng.1c00904

Keywords

polymer/ceramic composite electrolyte; sulfides; lithium conducting mechanisms; electrochemical and chemical stability; solid-state batteries

Funding

  1. German Federal Ministry of Education and Research (BMBF) [03XP0125D]

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This study systematically investigates sulfide-based polymer/ceramic composites, revealing the composition-dependent Li-ion conduction mechanism and electrochemical behavior, highlighting the importance of rational composition selection. Additionally, the study also examines chemical stability and internal reactions, contributing to the design and fabrication of composite electrolytes for high-performance lithium metal batteries.
The incorporation of inorganic lithium superionic conductors in polymer/ceramic composite electrolytes has been frequently proposed since this approach is expected to take advantage of the high ionic conductivities of the lithium superionic conductors and the elasticity of the polymer constituents of the composites. Nevertheless, the properties and mechanisms of polymer/ceramic composite electrolytes are yet to be comprehensively investigated. In this work, we systematically study sulfide-based polymer/ceramic composites from the aspects of composition dependence, electrochemical performance, and chemical stability. The composition-dependent Li-ion conduction mechanism and electrochemical behavior have been revealed for polyethylene oxide/Li10GeP2S12 composite electrolytes, highlighting the rational selection of compositions of polymer/ceramic composites toward desired functions. Furthermore, the chemical stability of the sulfide electrolyte in diverse solvent media as well as the potential internal reactions between the components of the composite electrolyte have been investigated, which underline the chemical stability consideration in the design and fabrication of the composite electrolyte. Thus, this work aims at contributing to the design and fabrication of sulfide-based polymer/ceramic composite electrolytes that enable high-performance lithium metal batteries.

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