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Updated: Jul 1, 2026

Evaluating the Electrochemical Properties of Supercapacitors using the Three-Electrode System
Published on: January 7, 2022
Ti3C2-Mxene-dispersion and morphology controlled battery-type nickel cobalt sulphide based nanocomposites for the
Abhinaba Das1, Arnab Samanta Roy Choudhury1, Pallab Bhattacharya2,3
1Functional Materials Group, Advanced Materials & Corrosion (AMC) Division, CSIR-National Metallurgical Laboratory (NML), Burmamines, East Singhbhum, Jamshedpur, Jharkhand, 831007, India.
Abstract:
Nickel cobalt sulphide (NiCo2S4) is a promising battery-type electrode material due to its high theoretical capacitance and rich redox activity. However, its poor electrical conductivity and structural instability hinder practical application. Incorporation of two-dimensional (2D) Ti3C2 MXene can address these issues by improving conductivity and mechanical integrity. While previous studies have explored the synergistic effects of Ti3C2 and NiCo2S4, the influence of MXene exfoliation state and morphology control on electrochemical performance remains underexplored. Herein, we report a one-step hydrothermal synthesis of delaminated Ti3C2@NiCo2S4 (d-Ti3C2@NiCo2S4) composites with tunable morphology by varying hydrothermal time (4-48 h). Among them, the 24 h sample (d-Ti3C2@NiCo2S4-24) featuring a hexagonal layered platelet structure exhibits superior performance, delivering 161.94 mAh g-1 (1165 F g-1) at 1 A g-1, with ~ 81% rate capability at 5 A g-1 and 85% capacity retention over 20,000 cycles. It significantly outperforms both bare NiCo2S4-24 and the multilayer Ti3C2-based composite. The asymmetric device (d-Ti3C2@NiCo2S4-24//AC) delivers 19.88 Wh kg-1 at 399.82 W kg-1 with 86% retention after 9000 cycles, demonstrating excellent potential for practical energy storage applications.
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