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Cited 2 time in webofscience Cited 2 time in scopus
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이산화바나듐 나노플라워 구조 최적화를 통한 리튬-황 전지의 폴리설파이드 셔틀 효과 완화Alleviating the Polysulfide Shuttle Effect by Optimization of 3D Flower-Shaped Vanadium Dioxide for Lithium-Sulfur Batteries

Other Titles
Alleviating the Polysulfide Shuttle Effect by Optimization of 3D Flower-Shaped Vanadium Dioxide for Lithium-Sulfur Batteries
Authors
정수환최현준이상준이동박엄수윤문산윤종혁김주형
Issue Date
Nov-2023
Publisher
대한금속·재료학회
Keywords
Lithium-Sulfur batteries; VO2; MWCNT; Melt diffusion
Citation
대한금속·재료학회지, v.61, no.11, pp 849 - 856
Pages
8
Indexed
SCIE
SCOPUS
KCI
Journal Title
대한금속·재료학회지
Volume
61
Number
11
Start Page
849
End Page
856
URI
https://scholarworks.gnu.ac.kr/handle/sw.gnu/68376
DOI
10.3365/KJMM.2023.61.11.849
ISSN
1738-8228
2288-8241
Abstract
With the rapid development of portable devices and Energy Storage Systems (ESS), secondary batteries with high energy density and high capacity are in great demand. Among various candidates, Lithium-sulfur (Li-S) batteries have been considered for next-generation energy devices given their high theoretical capacity (1675 mAh g-1) and energy density (2500 Wh kg-1). However, the commercialization of Li S batteries faces challenges due to sulfur’s low electrical conductivity and the shuttle effect, caused by the dissolution of lithium polysulfide intermediates in the electrolyte during the charge-discharge process. Herein, to resolve these problems, we report the fabrication of a vanadium dioxide (VO2) composite via a simple hydrothermal method and optimize the structure of VO2 for constructing an effective Multi-Walled Carbon Nano Tube (MWCNT) and 3D flower-shaped VO2 (MWCNT@VO2) binary sulfur host by a simple melt diffusion method. In particular, the polar VO2 composite not only physically absorbs the soluble lithium polysulfides but also has strong chemical bonds with a higher affinity for lithium polysulfides, which act as a catalyst, enhancing electrochemical reversibility. Additionally, MWCNT improves sulfur’s poor electrical conductivity and buffers volume expansion during cycling. The designed S-MWCNT@VO2 electrode also exhibits better capacity retention and cycling performance than a bare S-MWCNT electrode as a lithium polysulfide reservoir.
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