Metallic 1T Phase MoS Nanosheets Covalently Functionalized with BBD Molecules for Enhanced Supercapacitor Performances.

ACS Appl Mater Interfaces

Department of Materials Science and Engineering, and State Key Laboratory of Marine Pollution, and Center of Super-Diamond and Advanced Films, City University of Hong Kong, Hong Kong S.A.R. 999077, China.

Published: January 2025


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Article Abstract

Metallic 1T phase molybdenum disulfide (MoS) is among the most promising electrode materials for supercapacitors, but its capacitance and cyclability remain to be improved to meet the constantly increasing energy storage needs in portable electronics. In this study, we present a strategy, covalent functionalization, which achieves the improvement of capacitance of metallic 1T phase MoS. Covalently functionalized by the modifier 4-bromobenzenediazonium tetrafluoroborate, the metallic MoS membrane exhibits increased interlayer spacing, slightly curled layered architecture, enhanced charge transfer, and improved adsorption capabilities toward electrolyte molecules and ions. Thanks to these boosted properties, the functionalized metallic MoS membrane exhibited excellent supercapacitor performances in a 0.5 M TBABF (acetonitrile as the solvent) electrolyte (with a specific capacitance of 135.67 F/cm at 1 A/g, more than three times that of the unfunctionalized metallic MoS membrane) and good stability, which can maintain a capacitance retention of 76.0% after 10 000 charge-discharge cycles.

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