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Эта публикация цитируется в 2 научных статьях (всего в 2 статьях)
CHEMISTRY AND MATERIAL SCIENCE
Electrochemical performance of r-graphene oxide based MnO$_{2}$ nanocomposite for supercapacitor
S. Kalaiarasiab, S. Shyamalac, M. Kavithac, C. Vedhic, R. R. Muthuchudarkodic a Manonmaniam Sundaranar University, Tirunelveli, Tamilnadu, India
b PG and Research Department of Chemistry, A.P.C. Mahalaxmi College for Women,Thoothukudi, Tamilnadu, India
c PG and Research Department of Chemistry, V.O. Chidambaram College, Thoothukudi,Tamilnadu, India
Аннотация:
In this study, we improved the capacitance of carbon based reduced graphene oxide (rGO) and metal oxide based MnO$_{2}$ by preparing nanocomposites of rGO/MnO$_{2}$ nanocomposite using chemical synthesis method. The prepared nanoparticles and nanocomposites are characterized by FTIR spectroscopy, XRD, PL spectroscopy and FESEM with EDAX spectroscopy. FTIR studies disclose the characteristic chemical bonding between the respective materials. The FESEM images demonstrate that the surface structure of rGO and MnO$_{2}$ can be easily tuned by forming the composite of rGO/MnO$_{2}$ materials leading to excellent process ability of the system. The super capacitive behaviors of nanocomposites are evaluated using cyclic voltammetry and galvanostatic charge-discharge techniques. The specific capacitance of rGO/MnO$_{2}$ composite is high compared to that of MnO$_{2}$ nanoparticle. In addition, impedance measurements of the MnO$_{2}$ nanoparticles and rGO/MnO$_{2}$ electrodes are executed proposing that the rGO/MnO$_{2}$ composite electrodes are promising materials for supercapacitor (186.6 Fg$^{-1}$).
Ключевые слова:
graphene oxide, cyclic voltammetry, nanocomposite, FESEM, electrochemical properties, supercapacitors.
Поступила в редакцию: 02.04.2022 Исправленный вариант: 05.04.2022 Принята в печать: 28.05.2022
Образец цитирования:
S. Kalaiarasi, S. Shyamala, M. Kavitha, C. Vedhi, R. R. Muthuchudarkodi, “Electrochemical performance of r-graphene oxide based MnO$_{2}$ nanocomposite for supercapacitor”, Наносистемы: физика, химия, математика, 13:3 (2022), 320–330
Образцы ссылок на эту страницу:
https://www.mathnet.ru/rus/nano1114 https://www.mathnet.ru/rus/nano/v13/i3/p320
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