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Cited 86 time in webofscience Cited 90 time in scopus
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Direct growth of 2D nickel hydroxide nanosheets intercalated with polyoxovanadate anions as a binder-free supercapacitor electrodeopen access

Authors
Gunjakar, Jayavant L.Inamdar, Akbar I.Hou, BoCha, SeungNamPawar, S. M.Abu Talha, A. A.Chavan, Harish S.Kim, JongminCho, SangeunLee, SeongwooJo, YongcheolKim, HyungsangIm, Hyunsik
Issue Date
21-May-2018
Publisher
ROYAL SOC CHEMISTRY
Citation
NANOSCALE, v.10, no.19, pp 8953 - 8961
Pages
9
Indexed
SCI
SCIE
SCOPUS
Journal Title
NANOSCALE
Volume
10
Number
19
Start Page
8953
End Page
8961
URI
https://scholarworks.dongguk.edu/handle/sw.dongguk/24381
DOI
10.1039/c7nr09626g
ISSN
2040-3364
2040-3372
Abstract
A mesoporous nanoplate network of two-dimensional (2D) layered nickel hydroxide Ni(OH)(2) intercalated with polyoxovanadate anions (Ni(OH)(2) POV) was built using a chemical solution deposition method. This approach will provide high flexibility for controlling the chemical composition and the pore structure of the resulting Ni(OH)(2)-POV nanohybrids. The layer-by-layer ordered growth of the Ni(OH)(2) POV is demonstrated by powder X-ray diffraction and cross-sectional high-resolution transmission electron microscopy. The random growth of the intercalated Ni(OH)(2) -POV nanohybrids leads to the formation of an interconnected network morphology with a highly porous stacking structure whose porosity is controlled by changing the ratio of Ni(OH)(2) and POV. The lateral size and thickness of the Ni(OH)(2)-POV nanoplates are similar to 400 nm and from similar to 5 nm to 7 nm, respectively. The obtained thin films are highly active electrochemical capacitor electrodes with a maximum specific capacity of 1440 F g(-1) at a current density of 1 A g(-1), and they withstand up to 2000 cycles with a capacity retention of 85%. The superior electrochemical performance of the Ni(OH)(2)-POV nanohybrids is attributed to the expanded mesoporous surface area and the intercalation of the POV anions. The experimental findings highlight the outstanding electrochemical functionality of the 2D Ni(OH)(2)-POV nanoplate network that will provide a facile route for the synthesis of low-dimensional hybrid nanomaterials for a highly active supercapacitor electrode.
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College of Natural Science > Department of Physics > 1. Journal Articles
College of Advanced Convergence Engineering > Division of System Semiconductor > 1. Journal Articles

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Inamdar, Akbar Ibrahim
College of Advanced Convergence Engineering (Division of System Semiconductor)
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