Optimizing the Ion Conductivity and Mechanical Stability of Polymer Electrolyte Membranes Designed for Use in Lithium Ion Batteries: Combining Imidazolium-Containing Poly(ionic liquids) and Poly(propylene carbonate)

Author:

Kiriy Nataliya1ORCID,Özenler Sezer1ORCID,Voigt Pauline1,Kobsch Oliver1,Meier-Haack Jochen1ORCID,Arnhold Kerstin1ORCID,Janke Andreas1ORCID,Muza Upenyu L.1ORCID,Geisler Martin12ORCID,Lederer Albena12ORCID,Pospiech Doris1ORCID,Kiriy Anton3,Voit Brigitte14ORCID

Affiliation:

1. Leibniz-Institut für Polymerforschung Dresden e.V., Hohe Str. 6, 01069 Dresden, Germany

2. Department Chemistry and Polymer Science, Stellenbosch University, Matieland 7600, South Africa

3. beeOLED GmbH, Niedersedlitzer Strasse 75c, 01257 Dresden, Germany

4. Organische Chemie der Polymere, Technische Universität Dresden, 01062 Dresden, Germany

Abstract

State-of-the-art Li batteries suffer from serious safety hazards caused by the reactivity of lithium and the flammable nature of liquid electrolytes. This work develops highly efficient solid-state electrolytes consisting of imidazolium-containing polyionic liquids (PILs) and lithium bis(trifluoromethane sulfonyl)imide (LiTFSI). By employing PIL/LiTFSI electrolyte membranes blended with poly(propylene carbonate) (PPC), we addressed the problem of combining ionic conductivity and mechanical properties in one material. It was found that PPC acts as a mechanically reinforcing component that does not reduce but even enhances the ionic conductivity. While pure PILs are liquids, the tricomponent PPC/PIL/LiTFSI blends are rubber-like materials with a Young’s modulus in the range of 100 MPa. The high mechanical strength of the material enables fabrication of mechanically robust free-standing membranes. The tricomponent PPC/PIL/LiTFSI membranes have an ionic conductivity of 10−6 S·cm−1 at room temperature, exhibiting conductivity that is two orders of magnitude greater than bicomponent PPC/LiTFSI membranes. At 60 °C, the conductivity of PPC/PIL/LiTFSI membranes increases to 10−5 S·cm−1 and further increases to 10−3 S·cm−1 in the presence of plasticizers. Cyclic voltammetry measurements reveal good electrochemical stability of the tricomponent PIL/PPC/LiTFSI membrane that potentially ranges from 0 to 4.5 V vs. Li/Li+. The mechanically reinforced membranes developed in this work are promising electrolytes for potential applications in solid-state batteries.

Funder

Mercedes-Benz AG

Publisher

MDPI AG

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