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Cited 39 time in webofscience Cited 40 time in scopus
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MOF-derived flower-like ZnCo2O4/ZnO nanoarchitecture as a high-performance battery-type redox-active electrode material for hybrid supercapacitor applicationsopen access

Authors
Sivakumar, PeriyasamyKulandaivel, LoganathanPark, JeongWonRaj, C. JustinManikandan, RamuJung, Hyun
Issue Date
Aug-2023
Publisher
Elsevier B.V.
Keywords
Multi -component metal oxide; Nanoarchitecture; Battery -type redox kinetics; Hybrid supercapacitor; Energy storage
Citation
Journal of Alloys and Compounds, v.952, pp 1 - 9
Pages
9
Indexed
SCIE
SCOPUS
Journal Title
Journal of Alloys and Compounds
Volume
952
Start Page
1
End Page
9
URI
https://scholarworks.dongguk.edu/handle/sw.dongguk/21231
DOI
10.1016/j.jallcom.2023.170042
ISSN
0925-8388
1873-4669
Abstract
Implementing a facile and efficient strategy to fabricate the multi-component metal oxide nanocomposites as the high-efficient electroactive electrode materials have gathered the limelight for effective energy storage applications. However, the reasonable design and development of such materials is still a significant challenge to meet the energy storage capability. Herein, we report a bottom-up strategy to fabricate a flower-like ZnCo2O4/ZnO (ZCO/ZnO) nanoarchitecture via thermal decomposition of a metal-organic fra-mework (MOF). The unique flower-like ZCO/ZnO nanoarchitecture provides a fruitful channel for rapid electron and ion transportation and offers abundant electroactive sites for the battery-type Faradaic charge storage process. Interestingly, the multi-component ZCO/ZnO electrode reveals a specific capacitance of (Csp) of 803 F g-1 at a specific current of 1 A g-1 as compared to its counterparts (ZCO and ZnO). Even at a high specific current of 20 A g-1, a superior Csp of 538 F g-1 can be achieved, signifying the high-rate performance of the ZCO/ZnO electrode. In addition, the hybrid supercapacitor of ZCO/ZnO//AC depicts the Csp of 161 F g-1 at a specific current of 1 A g-1. It delivers a high specific energy of 50.41 Wh kg-1 at a specific power of 710.49 W kg-1, with excellent cyclic retention of around 91.04% over 10,000 cycles. Hence, this strategy could enlighten a pathway to fabricate promising electrode materials for high-performance elec-trochemical energy devices.(c) 2023 Elsevier B.V. All rights reserved.
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