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Cited 2 time in webofscience Cited 4 time in scopus
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Template-directed in situ grown bimetallic nanoarchitectures with hydroxide active site enriched multi-charge transfer routes for energy storage

Authors
Savariraj, Antonysamy DennysonThondaiman, PugalenthiyarSivakumar, PeriyasamyManikandan, RamuRodney, John D.Kim, Byung ChulJung, Hyun
Issue Date
Aug-2024
Publisher
Royal Society of Chemistry
Keywords
Capacitance; Design For Testability; Electrodes; Electronic Structure; Energy Storage; Nanosheets; Nickel Compounds; Organometallics; Potassium Hydroxide; Active Site; Bimetallics; Free-standing Electrode; Metalorganic Frameworks (mofs); Multi-charge Transfer; Multiple Charge; Nano-architecture; Situ Grown; Specific Capacities; Volumetric Capacitance; Charge Transfer
Citation
Journal of Materials Chemistry A, v.12, no.34, pp 22637 - 22654
Pages
18
Indexed
SCIE
SCOPUS
Journal Title
Journal of Materials Chemistry A
Volume
12
Number
34
Start Page
22637
End Page
22654
URI
https://scholarworks.dongguk.edu/handle/sw.dongguk/22866
DOI
10.1039/d4ta03412k
ISSN
2050-7488
2050-7496
Abstract
Cobalt metal-organic frameworks were used as templates to obtain densely stacked two-dimensional ultrathin nanosheets of nickel/cobalt metal-organic frameworks on carbon cloth via in situ deposition at room temperature. The freestanding electrodes made of ultra-thin nanosheets and quasi-one-dimensional pores exhibited a unique electronic structure with Ni(OH)(2) anchored to the surface. With distinctive structural superiority, multiple charge transfer routes, and Ni(OH)(2) moieties as active sites, the electrode showcased a high areal capacity (C-a) of 2041 mC cm(-2) (2 mA cm(-2)), a specific capacity of (C-s) 671 C g(-1), a volumetric capacitance (C-vc) of 1033 F cm(-3) (2 A g(-1)) and a prolonged cycling life of 5000 cycles with an appreciable capacity retention of 91.5% in 6 M KOH. The asymmetric supercapacitor device assembled (CC/CoNi-MOF@Ni(OH)(2)//CC/O,N,S@AC) delivered a superior specific capacity (C-s) of 284 C g(-1), a specific capacitance (C-sp) of 189 F g(-1), a volumetric capacitance (C-vc) of 128 F cm(-3), a maximum specific energy (E-s) of 75.0 W h kg(-1), and an excellent specific power (P-s) of 17.13 kW kg(-1), and withstood 10 000 charge/discharge cycles with a decline of 11.3% in the initial capacity. The proposed method with DFT analysis underpins a strategy to custom-design economically viable freestanding electrodes with a large surface area per volume/mass, a synergy effect at the interface, and multiple charge transfer pathways for potential application in energy storage.
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