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High-efficiency and high-power rechargeable lithium-sulfur dioxide batteries exploiting conventional carbonate-based electrolytesopen access

Authors
Park, HyeokjunLim, Hee-DaeLim, Hyung-KyuSeong, Won MoMoon, SehwanKo, YoungminLee, ByungjuBae, YoungjoonKim, HyungjunKang, Kisuk
Issue Date
May-2017
Publisher
NATURE PORTFOLIO
Citation
NATURE COMMUNICATIONS, v.8, pp.1 - 10
Indexed
SCIE
SCOPUS
Journal Title
NATURE COMMUNICATIONS
Volume
8
Start Page
1
End Page
10
URI
https://scholarworks.bwise.kr/hanyang/handle/2021.sw.hanyang/187538
DOI
10.1038/ncomms14989
ISSN
2041-1723
Abstract
Shedding new light on conventional batteries sometimes inspires a chemistry adoptable for rechargeable batteries. Recently, the primary lithium-sulfur dioxide battery, which offers a high energy density and long shelf-life, is successfully renewed as a promising rechargeable system exhibiting small polarization and good reversibility. Here, we demonstrate for the first time that reversible operation of the lithium-sulfur dioxide battery is also possible by exploiting conventional carbonate-based electrolytes. Theoretical and experimental studies reveal that the sulfur dioxide electrochemistry is highly stable in carbonate-based electrolytes, enabling the reversible formation of lithium dithionite. The use of the carbonate-based electrolyte leads to a remarkable enhancement of power and reversibility; furthermore, the optimized lithium-sulfur dioxide battery with catalysts achieves outstanding cycle stability for over 450 cycles with 0.2 V polarization. This study highlights the potential promise of lithium-sulfur dioxide chemistry along with the viability of conventional carbonate-based electrolytes in metal-gas rechargeable systems.
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COLLEGE OF ENGINEERING (DEPARTMENT OF CHEMICAL ENGINEERING)
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