4.7 Article

Electrochemical behaviour of manganese & ruthenium mixed oxide@ reduced graphene oxide nanoribbon composite in symmetric and asymmetric supercapacitor

期刊

APPLIED SURFACE SCIENCE
卷 427, 期 -, 页码 102-111

出版社

ELSEVIER SCIENCE BV
DOI: 10.1016/j.apsusc.2017.08.028

关键词

MnO2-RuO2 oxide; Reduced graphene oxide nanoribbon; Asymmetric supercapacitor; Relaxation time

资金

  1. NPDF from Department of Science and Technology, India [PDF/2015/000470]

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This paper reports the interaction of 3d-4d transition metal mixed oxide as simultaneous existence of M(3d) and M(4d) expectedly enhance the electrochemical performance of the resulting composite. Electrochemical performance of MnO2-RuO2 nanoflakes reduced graphene oxide nanoribbon composite (MnO2-RuO2@GNR) is intensively explored in symmetric and asymmetric supercapacitor assembly. In situ incorporation of graphene oxide nanoribbon (GONR) during synthesis provides efficient binding sites for growth of MnO2-RuO2 nanoflakes via their surface functionalities. The interconnected MnO2-RuO2 nanoflakes via GNR form a network with enhanced diffusion kinetics leading to efficient supercapacitor performance. Fabricated asymmetric supercapacitor reveals energy density 60 Wh kg(-1) at power density 14 kW kg(-1). Based on the analysis of impedance data in terms of complex power, quick response time of supercapacitor reveals excellent power delivery of the device. Improved cycling stability after 7000 charge discharge cycles for symmetric and asymmetric supercapacitor highlights the buffering action of GNR and can be generalized for next generation high performance supercapacitor. (C) 2017 Elsevier B.V. All rights reserved.

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