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1. Journal Articles
Phase transformation of NiCo hydroxides derived from carbonate anion and its effect on electrochemical pseudocapacitor performance
Baek, Seong-Ho
;
Jeong, Young-Min
;
Kim, Dong Yeon
;
Park, Il-Kyu
Division of Energy & Environmental Technology
1. Journal Articles
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Title
Phase transformation of NiCo hydroxides derived from carbonate anion and its effect on electrochemical pseudocapacitor performance
DGIST Authors
Baek, Seong-Ho
;
Jeong, Young-Min
Issued Date
2020-08
Citation
Baek, Seong-Ho. (2020-08). Phase transformation of NiCo hydroxides derived from carbonate anion and its effect on electrochemical pseudocapacitor performance. doi: 10.1016/j.cej.2020.124713
Type
Article
Article Type
Article
Author Keywords
Layered double hydroxide
;
Carbonate hydroxide
;
Pseudocapacitor
;
Phase transformation
;
Hierarchical structure
Keywords
LAYERED DOUBLE HYDROXIDES
;
HYDROTALCITE-LIKE COMPOUNDS
;
ARRAYS
;
ELECTRODE
;
TEMPERATURE
;
CONVERSION
;
NANOSHEETS
;
EFFICIENT
;
FOAM
ISSN
1385-8947
Abstract
Pseudocapacitors can exhibit higher capacity compared to traditional electrostatic or electric double-layer capacitors while they can provide faster power delivery and longer cycling ability than lithium–ion batteries. In this study, we demonstrate the hierarchical structures of NiCo hydroxides, which are grown on Ni foam via facile hydrothermal method and show enhanced pseudocapacitor performance. Moreover, we suggest the intriguing phase transformation of NiCo-layered double hydroxide (LDH) to NiCo-carbonate hydroxide (CH) and elucidate the morphological evolution mechanism from nanosheet to nanowire structures by increasing the concentration of carbonate anions during the synthesis procedure. The experimental results confirm that an increase of carbonate anions causes the phase and morphology of NiCo–LDH to transform into NiCo–CH. Consequently, the asymmetric device using NCCH16 electrode achieves excellent electrochemical performance, with an energy density of 31.1 Wh·kg−1 at a power density of 424.3 W·kg−1 due to their structural benefits, which provide effective electrolyte transport, charge transfer, and active site accessibility. © 2020 Elsevier B.V.
URI
http://hdl.handle.net/20.500.11750/11573
DOI
10.1016/j.cej.2020.124713
Publisher
Elsevier BV
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Baek, Seong-Ho
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