Accelerating the Rate‐Determining Steps of Sulfur Conversion Reaction for Lithium‐Sulfur Batteries Working at an Ultrawide Temperature Range

Author:

Deng Ding‐Rong1ORCID,Xiong Hai‐Ji1,Luo Yu‐Lin1,Yu Kai‐Min1,Weng Jian‐Chun1,Li Gui‐Fang1,Lei Jie2,Li Yi3,Zheng Ming‐Sen4,Wu Qi‐Hui1

Affiliation:

1. College of Marine Equipment and Mechanical Engineering Key Laboratory of Energy Cleaning Utilization Development Cleaning Combustion and Energy Utilization Research Center of Fujian Province Xiamen Key Laboratory of Marine Corrosion and Smart Protective Materials Jimei University Xiamen Fujian 361021 China

2. College of Materials Science and Engineering Institute of New Energy Materials and Engineering Fuzhou University Fuzhou 350108 China

3. Jiangsu Key Lab of Advanced Functional Polymer Design and Application Department of Polymer Science and Engineering College of Chemistry Chemical Engineering and Materials Science Soochow University Suzhou 215123 China

4. State Key Laboratory for Physical Chemistry of Solide Surfaces Department of Chemistry College of Chemistry and Chemical Engineering iChem Xiamen University Xiamen 361005 China

Abstract

AbstractWide operation temperature is the crucial objective for an energy storage system that can be applied under harsh environmental conditions. For lithium‐sulfur batteries, the “shuttle effect” of polysulfide intermediates will aggravate with the temperature increasing, while the reaction kinetics decreases sharply as the temperature decreasing. In particular, sulfur reaction mechanism at low temperatures seems to be quite different from that at room temperature. Here, through in situ Raman and electrochemical impedance spectroscopy studies, the newly emerged platform at cryogenic temperature corresponds to the reduction process of Li2S8 to Li2S4, which will be another rate‐determining step of sulfur conversion reaction, in addition to the solid‐phase conversion process of Li2S4 to Li2S2/Li2S at low temperatures. Porous bismuth vanadate (BiVO4) spheres are designed as sulfur host material, which achieve the rapid snap‐transfer‐catalytic process by shortening lithium‐ion transport pathway and accelerating the targeted rate‐determining steps. Such promoting effect greatly inhibits severe “shuttle effect” at high temperatures and simultaneously improves sulfur conversion efficiency in the cryogenic environment. The cell with the porous BiVO4 spheres as the host exhibits excellent rate capability and cycle performance under wide working temperatures.

Funder

National Natural Science Foundation of China

Publisher

Wiley

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