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Optimizing the electrons/ions diffusion kinetics in δ-MnO2 for realizing an ultra-high rate-capability supercapacitor.

Authors :
Tang, Can
Wang, Xin
Ma, Mingzhu
Wang, Zhongliao
Li, Yong
Li, Han
Li, Bing
Zhang, Yongxing
Zhu, Xuebin
Source :
Chemical Engineering Journal. Sep2023, Vol. 471, pN.PAG-N.PAG. 1p.
Publication Year :
2023

Abstract

[Display omitted] • The few-layer defective δ-MnO 2 was developed by hydrothermal with CTAB and KMnO 4. • As the current increases by 50-fold, δ-MnO 2 -CTAB shows ultra-high rate-capability. • The kinetics diffusion mechanism of the sample was analyzed by DFT calculations. δ-MnO 2 nanosheets are promising cathode candidates for supercapacitors because of their cost-effective, environmental protection, and high theoretical capacity. Unfortunately, the commercial application of δ-MnO 2 is hindered by the challenging issues of sluggish diffusion kinetic and poor rate-capability. It is urgent to optimize its kinetics behavior to improve the ion diffusion ability and electronic conductivity. Herein, one-step and one-phase synthesis of few-layer defective δ-MnO 2 nanosheets (named δ-MnO 2 -CTAB) has been developed via a redox reaction between cetyltrimethylammonium bromide (CTAB) and KMnO 4 , and the kinetics storage mechanisms are investigated by DFT calculations. The migration barrier energies of Na in the surface or interlayer of δ-MnO 2 (0 0 1) are reduced significantly with the reduction of layer-number (0.32 eV of 3 layers and 0.04 eV of 2 layers), which is conducive to the Na ion diffusion. Moreover, the generation of defects increases the density of states at the Fermi level of δ-MnO 2 , indicating the improvement of electronic conductivity. Therefore, when the current density is increased 50-fold (1 A g−1 to 50 A g−1), the rate-capability of δ-MnO 2 -CTAB is as high as 77%, exhibiting ultra-high rate-capability. This work unveils the kinetics storage mechanisms in few-layer δ-MnO 2 with defects nanosheets for ultra-high rate-capability supercapacitors. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
13858947
Volume :
471
Database :
Academic Search Index
Journal :
Chemical Engineering Journal
Publication Type :
Academic Journal
Accession number :
169790058
Full Text :
https://doi.org/10.1016/j.cej.2023.144784