Partially Ion‐Paired Solvation Structure Design for Lithium‐Sulfur Batteries under Extreme Operating Conditions

Author:

Cai Guorui1ORCID,Gao Hongpeng1,Li Mingqian2,Gupta Varun2,Holoubek John1,Pascal Tod A.1234,Liu Ping1234,Chen Zheng1234ORCID

Affiliation:

1. Department of NanoEngineering University of California, San Diego La Jolla CA 92093 USA

2. Program of Materials Science and Engineering University of California, San Diego La Jolla CA 92093 USA

3. Sustainable Power and Energy Center University of California, San Diego La Jolla CA 92093 USA

4. Program of Chemical Engineering University of California, San Diego La Jolla CA 92093 USA

Abstract

AbstractAchieving increased energy density under extreme operating conditions remains a major challenge in rechargeable batteries. Herein, we demonstrate an all‐fluorinated ester‐based electrolyte comprising partially fluorinated carboxylate and carbonate esters. This electrolyte exhibits temperature‐resilient physicochemical properties and moderate ion‐paired solvation, leading to a half solvent‐separated and half contact‐ion pair in a sole electrolyte. As a result, facile desolvation and preferential reduction of anions/fluorinated co‐solvents for LiF‐dominated interphases are achieved without compromising ionic conductivity (>1 mS cm−1 even at −40 °C). These advantageous features were found to apply to both lithium metal and sulfur‐based electrodes even under extreme operating conditions, allowing stable cycling of Li || sulfurized polyacrylonitrile (SPAN) full cells with high SPAN loading (>3.5 mAh cm−2) and thin Li anode (50 μm) at −40, 23 and 50 °C. This work offers a promising path for designing temperature‐resilient electrolytes to support high energy density Li metal batteries operating in extreme conditions.

Funder

Materials Research Science and Engineering Center, University of California, San Diego

National Nanotechnology Coordinating Office

Office of Advanced Cyberinfrastructure

Publisher

Wiley

Subject

General Medicine

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