Ion regulation of hollow nickel cobalt layered double hydroxide nanocages derived from ZIF-67 for High-Performance supercapacitors
Publication type: Journal Article
Publication date: 2022-09-01
scimago Q1
wos Q1
SJR: 1.310
CiteScore: 13.4
Impact factor: 6.9
ISSN: 01694332, 18735584
Surfaces, Coatings and Films
General Chemistry
General Physics and Astronomy
Condensed Matter Physics
Surfaces and Interfaces
Abstract
Three-dimensional hollow Ni-Co LDH with staggered nanosheets as the shell is synthesized from ZIF-67 template via the microwave treatment. The Ni-Co LDH electrode exhibits an ultrahigh high specific capacitance (2369.0F/g at 0.5 A/g) and the Ni-Co LDH//AC device delivers excellent cycling stability with 83.6% capacitance retention after 10,000 cycles. This work provides a promising way for fabricating unique and complex 3D hollow structure with satisfactory electrochemical performance from MOF templates. • Three-dimensional hollow Ni-Co LDH nanocages are successfully synthesized from ZIF-67 template via microwave heating treatment. • Its unique architecture can promote the free diffusion and lessen the transfer distance for electrons and ions during the process of electrochemical reactions. • The synergistic effects of Ni and Co ions can provide multiple redox reactions during the electrochemical charge/discharge process. • The Ni-Co LDH electrode exhibits a superior capacitance of 2369.0F/g at 0.5 A/g and excellent rate capability. • The Ni-Co LDH//AC asymmetric supercapacitor delivers excellent cycling stability with 83.6% capacitance retention after 10,000 cycles. Ni-Co layered double hydroxides (LDHs) have been extensively applied as promising supercapacitor materials due to their ultra-high theoretical capacitance and excellent redox activity. Herein, three-dimensional hollow Ni-Co LDH with staggered nanosheets as the shell was synthesized from ZIF-67 template via the microwave treatment. The Ni-Co LDH revealed a high specific capacitance (2369.0F/g at 0.5 A/g) and a satisfactory rate capability when used as the electrode materials, which could be attributed to its high specific surface area, more exposed active sites, and the synergistic effects between nickel and cobalt ions for promoting mass transfer. Moreover, the asymmetric supercapacitor device possessed the energy density and power density as high as 21.28 Wh/kg and 3741.0 W/kg, respectively. Meanwhile, the Ni-Co LDH//AC device delivered excellent cycling stability with 83.6% capacitance retention after 10,000 cycles. This strategy is promising to be applied in other devices for energy storage, such as Li/Na/K-ion batteries, fuel cells, solar cells, etc.
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Wang M. et al. Ion regulation of hollow nickel cobalt layered double hydroxide nanocages derived from ZIF-67 for High-Performance supercapacitors // Applied Surface Science. 2022. Vol. 596. p. 153582.
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Wang M., Feng Yu., Yan Z., Li S., Wu M., Xue L., Zhao J., Zhang W., Ge M., Lai Y., Mi J. Ion regulation of hollow nickel cobalt layered double hydroxide nanocages derived from ZIF-67 for High-Performance supercapacitors // Applied Surface Science. 2022. Vol. 596. p. 153582.
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TY - JOUR
DO - 10.1016/j.apsusc.2022.153582
UR - https://doi.org/10.1016/j.apsusc.2022.153582
TI - Ion regulation of hollow nickel cobalt layered double hydroxide nanocages derived from ZIF-67 for High-Performance supercapacitors
T2 - Applied Surface Science
AU - Wang, Miao
AU - Feng, Yu
AU - Yan, Zifeng
AU - Li, Shanshan
AU - Wu, Mengmeng
AU - Xue, Langlang
AU - Zhao, Jian
AU - Zhang, Wei
AU - Ge, Mingzheng
AU - Lai, Yuekun
AU - Mi, Jie
PY - 2022
DA - 2022/09/01
PB - Elsevier
SP - 153582
VL - 596
SN - 0169-4332
SN - 1873-5584
ER -
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@article{2022_Wang,
author = {Miao Wang and Yu Feng and Zifeng Yan and Shanshan Li and Mengmeng Wu and Langlang Xue and Jian Zhao and Wei Zhang and Mingzheng Ge and Yuekun Lai and Jie Mi},
title = {Ion regulation of hollow nickel cobalt layered double hydroxide nanocages derived from ZIF-67 for High-Performance supercapacitors},
journal = {Applied Surface Science},
year = {2022},
volume = {596},
publisher = {Elsevier},
month = {sep},
url = {https://doi.org/10.1016/j.apsusc.2022.153582},
pages = {153582},
doi = {10.1016/j.apsusc.2022.153582}
}