Electrochemical Performance of CeO2/MXene Nanocomposites with Enhanced Capacitance and Cycling Stability for High-Performance Supercapacitors

Abstract

Supercapacitors play a crucial role in advancing modern electronic and electrical systems due to their high-power density, rapid charge-discharge rates, and long cycle life. However, achieving optimal electrochemical performance requires the development of advanced electrode materials. MXenes, a class of two-dimensional transition metal carbides or nitrides, have attracted considerable attention for energy storage applications owing to their excellent electrical conductivity, hydrophilicity, and tunable surface terminations. Incorporating MXene into CeO₂-based composites enables the exploitation of these properties to enhance charge storage and transport capabilities. In this study, CeO₂/MXene-based nanocomposites with varying MXene contents (CeO₂, CeO₂/MXene-0.5, CeO₂/MXene-0.6, and CeO₂/MXene-0.7) were synthesized via a hydrothermal method. The structural, morphological, and electrochemical properties of the composites were characterized using advanced analytical techniques. Electrochemical measurements in a three-electrode configuration demonstrated that the CeO₂/MXene-0.7 composite delivered an outstanding specific capacitance of 1459 F g⁻¹, along with the lowest charge-transfer resistance among all samples. Moreover, it exhibited excellent rate capability and retained 89% of its initial capacitance after 2200 cycles, indicating superior cycling stability. The uniform dispersion of CeO₂ nanoparticles on MXene nanosheets improved the overall electrical conductivity, thereby facilitating efficient charge storage and transport. These results identify the CeO₂/MXene-0.7 composite as a promising electrode material for pseudocapacitors, with significant potential for high-performance energy storage applications. Key words: CeO2/MXene nanocomposites, electrochemical performance, supercapacitors, cycling stability, specific capacitance.

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Article information

Article type
Paper
Submitted
30 Oct 2025
Accepted
29 Dec 2025
First published
30 Dec 2025

New J. Chem., 2026, Accepted Manuscript

Electrochemical Performance of CeO2/MXene Nanocomposites with Enhanced Capacitance and Cycling Stability for High-Performance Supercapacitors

R. R, V. Balasubramani, T. S, A. Natarajan and A. Rajaram, New J. Chem., 2026, Accepted Manuscript , DOI: 10.1039/D5NJ04263A

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