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Enhancing supercapacitor performance using nanosheet-covered nanotube structures Co3S4/Ni0.96S@CNTs with carbon nanotubes as conductive substrates.

Authors :
Wang, Yanmin
Liu, Songtao
Sun, Xuejiao
He, Wenxiu
Zhang, Yongqiang
Source :
Dalton Transactions: An International Journal of Inorganic Chemistry; 10/21/2023, Vol. 52 Issue 39, p14047-14053, 7p
Publication Year :
2023

Abstract

Transition metal sulfides have broad application prospects as supercapacitor electrode materials. However, their poor structural stability and conductivity hinder improvements in their electrochemical performance. Therefore, the introduction of highly conductive carbon nanotubes (CNTs) as sulfide growth substrates is considered to improve the microstructure and electrochemical performance of electrode materials. In this study, a highly conductive CNT solution was sprayed onto a nickel foam current collector, and Co<subscript>3</subscript>S<subscript>4</subscript>/Ni<subscript>0.96</subscript>S was successfully constructed on a CNT conductive substrate using a combination of hydrothermal and electrochemical deposition methods, forming a unique nanosheet-covered nanotube structure Co<subscript>3</subscript>S<subscript>4</subscript>/Ni<subscript>0.96</subscript>S@CNTs. The addition of an appropriate concentration of CNTs can not only serve as a substrate for the growth of Co<subscript>3</subscript>S<subscript>4</subscript>/Ni<subscript>0.96</subscript>S, but also effectively maintain the overall nanosheet structure. Thus, the Co<subscript>3</subscript>S<subscript>4</subscript>/Ni<subscript>0.96</subscript>S@CNTs (2-CSNS@CNTs) have a stable structure and a wide range of electrochemical reaction sites, ensuring excellent conductivity and cycling stability. The electrode material 2-CSNS@CNTs exhibited a specific capacity of 1427.05 C g<superscript>−1</superscript> at 1 A g<superscript>−1</superscript>. Additionally, the asymmetric supercapacitor 2-CSNS@CNTs exhibited a high energy density of 53.76 W h kg<superscript>−1</superscript> at 800 W kg<superscript>−1</superscript> and a capacity retention rate of 68.5% at 10 A g<superscript>−1</superscript> after 1000 cycles. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
14779226
Volume :
52
Issue :
39
Database :
Complementary Index
Journal :
Dalton Transactions: An International Journal of Inorganic Chemistry
Publication Type :
Academic Journal
Accession number :
172897468
Full Text :
https://doi.org/10.1039/d3dt01792c