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
- 정수환; 최현준; 이상준; 이동박; 엄수윤; 문산; 윤종혁; 김주형
- 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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