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Graphene quantum dots: Structural integrity and oxygen functional groups for high sulfur/sulfide utilization in lithium sulfur batteries

Authors
유승호
Issue Date
5월-2016
Publisher
NATURE PUBLISHING GROUPHOUNDMILLSBASINGSTOKE, HAMPSHIRERG21 6XS
Citation
NPG ASIA MATERIALS, v.8, no.5
Indexed
SCIE
SCOPUS
Journal Title
NPG ASIA MATERIALS
Volume
8
Number
5
URI
https://scholar.korea.ac.kr/handle/2021.sw.korea/139883
DOI
10.1038/am.2016.61
ISSN
1884-4049
Abstract
Lithium-sulfur (Li-S) batteries are expected to overcome the limit of current energy storage devices by delivering high specific energy with low material cost. However, the potential of Li-S batteries has not yet been realized because of several technical barriers. Poor electrochemical performance is mainly attributed to the low electrical conductivity of the fully charged and discharged species, the irreversible loss of polysulfide anions and the decrease in the number of electrochemically active reaction sites during battery operation. Here, we report that the introduction of graphene quantum dots (GQDs) into the sulfur cathode dramatically enhanced sulfur/sulfide utilization, yielding high performance. In addition, the GQDs induced structural integrity of the sulfur-carbon electrode composite by oxygen-rich functional groups. This hierarchical architecture enabled fast charge transfer while minimizing the loss of lithium polysulfides, which is attributed to the physicochemical properties of GQDs. The mechanisms through which excellent cycling and rate performance are achieved were thoroughly studied by analyzing capacity versus voltage profiles. Furthermore, experimental observations and theoretical calculations further clarified the role played by GQDs by proving that C-S bon
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