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Cited 4 time in webofscience Cited 4 time in scopus
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Cinnamon-Derived Hierarchically Porous Carbon as an Effective Lithium Polysulfide Reservoir in Lithium-Sulfur Batteriesopen access

Authors
Thangavel, RanjithKannan, Aravindaraj G.Ponraj, RubhaKaliyappan, KarthikeyanYoon, Won-SubKim, Dong-WonLee, Yun-Sung
Issue Date
Jun-2020
Publisher
MDPI
Keywords
lithium-sulfur batteries; bio-mass carbon; hierarchical nanostructures; polysulfides
Citation
NANOMATERIALS, v.10, no.6, pp.1 - 11
Indexed
SCIE
SCOPUS
Journal Title
NANOMATERIALS
Volume
10
Number
6
Start Page
1
End Page
11
URI
https://scholarworks.bwise.kr/hanyang/handle/2021.sw.hanyang/32779
DOI
10.3390/nano10061220
ISSN
2079-4991
Abstract
Lithium-sulfur batteries are attractive candidates for next generation high energy applications, but more research works are needed to overcome their current challenges, namely: (a) the poor electronic conductivity of sulfur, and (b) the dissolution and migration of long-chain polysulfides. Inspired by eco-friendly and bio-derived materials, we synthesized highly porous carbon from cinnamon sticks. The bio-carbon had an ultra-high surface area and large pore volume, which serves the dual functions of making sulfur particles highly conductive and acting as a polysulfide reservoir. Sulfur was predominantly impregnated into pores of the carbon, and the inter-connected hierarchical pore structure facilitated a faster ionic transport. The strong carbon framework maintained structural integrity upon volume expansion, and the unoccupied pores served as polysulfide trapping sites, thereby retaining the polysulfide within the cathode and preventing sulfur loss. These mechanisms contributed to the superior performance of the lithium-sulfur cell, which delivered a discharge capacity of 1020 mAh g(-1) at a 0.2C rate. Furthermore, the cell exhibited improved kinetics, with an excellent cycling stability for 150 cycles with a very low capacity decay of 0.10% per cycle. This strategy of combining all types of pores (micro, meso and macro) with a high pore volume and ultra-high surface area had a synergistic effect on improving the performance of the sulfur cathode.
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