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Sol-gel-driven combustion wave for scalable transformation of Mn(NO3)(2) precursors into MnO2-x/MWCNT supercapacitor electrodes capable of electrochemical activation

Authors
Shin, DongjoonHwang, HayoungYeo, TaehanPark, SeonghyunKim, TaewonLee, JaehoChoi, Wonjoon
Issue Date
11월-2019
Publisher
PERGAMON-ELSEVIER SCIENCE LTD
Keywords
Combustion synthesis; Carbon nanotube; Manganese oxide; Sol-gel process; Supercapacitor
Citation
CARBON, v.152, pp.746 - 754
Indexed
SCIE
SCOPUS
Journal Title
CARBON
Volume
152
Start Page
746
End Page
754
URI
https://scholar.korea.ac.kr/handle/2021.sw.korea/62120
DOI
10.1016/j.carbon.2019.06.071
ISSN
0008-6223
Abstract
Hybrids of carbon-based materials and metals/metal oxides have emerged as promising candidates for electrochemical electrodes. While porous and inter-connected networks are necessary for a high specific area and an outstanding electrochemical resistance, the fabrication of rationally designed hybrids requires complex procedures. Herein, we report sol-gel-driven combustion waves (CWs) for one-step transformation from Mn(NO3)(2)/multi-walled carbon nanotube (MWCNT) into MnO2-x/MWCNT hybrids capable of electrochemical activation. A solidified Mn(NO3)(2) /MWCNT/nitrocellulose (NC) mixture was prepared by applying drop-casting/drying processes to a precursor solution. The sol-gel-driven CWs, induced through the exothermic reaction of NC, conducted a rapid thermochemical transformation into MnO2-x/MWCNT hybrids. Electrochemical activation using cyclic voltammetry methods resulted in the anodizing and oxidizing of MnO2-x/MWCNT hybrids, thereby presenting porous and inter-connected MnO2/MWCNT electrodes consisting of plate-like MnO2 structures and embedded MWCNTs, as well as the increasing capacitance by 42.5%. Owing to the extended surface area of the porous MnO2 having the conductive networks of entangled MWCNTs among plate-like structures, MnO2/MWCNT supercapacitor electrodes exhibited a highly enhanced specific capacitance (similar to 259.6 F/g) and an outstanding long-term capacitance retention over 10,000 charge-discharge cycles (similar to 91% at 100 mV/s). The fabrication strategy using sol-gel-driven CWs enables a facile, new synthesis method for versatile hybrids of carbon-based materials and metals/metal oxides. (C) 2019 Elsevier Ltd. All rights reserved.
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