4.8 Article

Room-Temperature Pseudo-Solid-State Iron Fluoride Conversion Battery with High Ionic Conductivity

Journal

ACS APPLIED MATERIALS & INTERFACES
Volume 15, Issue 1, Pages 893-902

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsami.2c16332

Keywords

batteries; pseudo-solid state; gel polymer electrolytes; localized high-concentration electrolytes; iron fluoride; conversion; ionogels

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Li-metal batteries with FeF3 cathodes and pseudo-solid-state ionogel separators are a promising approach to produce affordable and eco-friendly batteries with high energy density. The batteries developed in this study utilize gel-infiltrated FeF3 cathodes prepared by exchanging the ionic liquid in a polymer ionogel with a localized high-concentration electrolyte. The stable and high-rate cycling performance of the Li-FeF3 batteries at room temperature opens up possibilities for different battery architectures, including flexible, three-dimensional, and custom shape designs.
Li-metal batteries (LMBs) employing conversion cathode materials (e.g., FeF3) are a promising way to prepare inexpensive, environmentally friendly batteries with high energy density. Pseudo-solid-state ionogel separators harness the energy density and safety advantages of solid-state LMBs, while alleviating key drawbacks (e.g., poor ionic conductivity and high interfacial resistance). In this work, a pseudo-solid-state conversion battery (Li-FeF3) is presented that achieves stable, high rate (1.0 mA cm-2) cycling at room temperature. The batteries described herein contain gel-infiltrated FeF3 cathodes prepared by exchanging the ionic liquid in a polymer ionogel with a localized high-concentration electrolyte (LHCE). The LHCE gel merges the benefits of a flexible separator (e.g., adaptation to conversion-related volume changes) with the excellent chemical stability and high ionic conductivity (similar to 2 mS cm-1 at 25 degrees C) of an LHCE. The latter property is in contrast to previous solid-state iron fluoride batteries, where poor ionic conductivities necessitated elevated temperatures to realize practical power levels. The stable, room-temperature Li-FeF3 cycling performance obtained with the LHCE gel at high current densities paves the way for exploring a range of architectures including flexible, three-dimensional, and custom shape batteries.

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