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Cited 19 time in webofscience Cited 20 time in scopus
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Fine-tuning the pore size of mesoporous graphene in a few nanometer-scale by controlling the interaction between graphite oxide sheets

Authors
Lee, JihyeNankya, RosalynnKim, AranJung, Hyun
Issue Date
10-Nov-2018
Publisher
PERGAMON-ELSEVIER SCIENCE LTD
Keywords
Mesoporous graphene; Pore size control; Narrow pore size distribution; Nanoscale fine-tuning; Supercapacitor
Citation
ELECTROCHIMICA ACTA, v.290, pp 496 - 505
Pages
10
Indexed
SCI
SCIE
SCOPUS
Journal Title
ELECTROCHIMICA ACTA
Volume
290
Start Page
496
End Page
505
URI
https://scholarworks.dongguk.edu/handle/sw.dongguk/8878
DOI
10.1016/j.electacta.2018.09.110
ISSN
0013-4686
1873-3859
Abstract
Mesoporous graphene (MG) was successfully synthesized by using the soft-template method with graphite oxide (GO) and triblock co-polymer (P123). The obtained MGs exhibit a high surface area as well as tuned pore parameters by preparing GO/P123 composite gel under different reaction conditions. Freeze-drying of the composite gel leads to physical interaction between the GO sheets, which induced the largest pores in MG. While, hydrothermal treatment can generate the chemical linkage between GOs through various reactions of oxygen functional groups on GOs, it facilitates the formation of relatively smaller and more uniform pores. Especially, the presence of a base catalyst under hydrothermal reaction accelerates the chemical reactions, which causes the smallest and most uniform pores. As controlling the interaction between GOs, the pore size of the MGs was easily fine-tuned in a few nanometer-scales never reported. Herein, the electrochemical performance was preliminarily tested as a supercapacitor among the various applications of MG. As a results, the hydrothermal treated sample shows the highest specific capacitance of 151.8 Fg(-1) at a current density of 0.1 Ag-1 .Additionally, it exhibits excellent cycle stability with similar to 96% retention of its initial capacitance at a current density of 3.0 Ag-1 even after 5000 cycles. (C) 2018 Elsevier Ltd. All rights reserved.
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