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Metallic 1T-MoS2 coupled with MXene towards ultra-high rate-capabilities for supercapacitors.

Authors :
Wan, Feng
Wang, Xin
Tang, Can
Jiang, Chengzhong
Wang, Weixin
Li, Bing
Zhang, Yongxing
Zhu, Xuebin
Source :
Journal of Materials Chemistry A; 6/14/2022, Vol. 10 Issue 22, p12258-12268, 11p
Publication Year :
2022

Abstract

Metallic 1T-phase MoS<subscript>2</subscript> (1T-MoS<subscript>2</subscript>) nanosheets with large interlayer spacing are considered to be a high-energy electrode material for use in supercapacitors; however, the electrochemical storage mechanism of 1T-MoS<subscript>2</subscript> involves ion intercalation, resulting in energy storage being limited at high current densities and showing poor rate capability. Here, a 1T-MoS<subscript>2</subscript>/Ti<subscript>3</subscript>C<subscript>2</subscript>T<subscript>x</subscript> heterostructure was assembled from metallic 1T-MoS<subscript>2</subscript> nanosheets coupled with a Ti<subscript>3</subscript>C<subscript>2</subscript> MXene through one-pot hydrothermal synthesis, and the electrochemical storage mechanisms were investigated. The electrochemical advantages of 1T-MoS<subscript>2</subscript> and Ti<subscript>3</subscript>C<subscript>2</subscript>T<subscript>x</subscript> can be united via synergistic interplay in the heterostructure. The high specific capacitance is attributed to the metallic properties and the large interlayer spacing of the 1T-MoS<subscript>2</subscript> component. More importantly, ultra-high rate capability is realized due to fast electron and ion transport originating from Ti<subscript>3</subscript>C<subscript>2</subscript>T<subscript>x</subscript>. In addition, an all-solid-state flexible asymmetric aqueous supercapacitor (FASC) constructed with 1T-MoS<subscript>2</subscript>/Ti<subscript>3</subscript>C<subscript>2</subscript>T<subscript>x</subscript> as the negative electrode and δ-MnO<subscript>2</subscript> as the positive electrode shows a wide potential window of 1.8 V and a high areal energy density of 68.8 μW h cm<superscript>−2</superscript> at 4500 μW cm<superscript>−2</superscript>. This work will provide a reference for studying electrochemical storage mechanisms in heterostructures, and it demonstrates the promise of the 1T-MoS<subscript>2</subscript>/MXene heterostructure for supercapacitor use. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
20507488
Volume :
10
Issue :
22
Database :
Complementary Index
Journal :
Journal of Materials Chemistry A
Publication Type :
Academic Journal
Accession number :
157297038
Full Text :
https://doi.org/10.1039/d2ta01908f