Electrochemical and defect characterization of APTES-functionalized Ti3C2Tx MXene for supercapacitor devices

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Güngör, Ahmet and Namvari, Mina and Ben Ayed, Amina and Erdem, Emre (2025) Electrochemical and defect characterization of APTES-functionalized Ti3C2Tx MXene for supercapacitor devices. Small . ISSN 1613-6810 (Print) 1613-6829 (Online) Published Online First https://dx.doi.org/10.1002/smll.202505698

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Abstract

This work comprehensively investigates the structural, surface, and electrochemical properties of MAX phase, MXene, and (3-aminopropyl)triethoxysilane-functionalized MXene (APTES-MXene) electrodes. The study developed a high-performance electrode design by APTES functionalization without incorporating conductive polymers, metal oxides, or carbon additions. The findings in the two-electrode system revealed that the APTES-MXene electrode exhibited a specific capacitance of 207.62 F g−1, an energy density of 28.83 Wh kg−1, and a capacity retention of 93.8%. The Dunn approach is utilized to determine the pseudo-capacitive contribution, demonstrating that the surface-controlled charge storage mechanism is dominant, with the capacitive contribution reaching 70.61%. The increase in charge transfer resistance following APTES modification in the EIS data signifies the creation of a more complicated ion transport structure due to the functional surface groups of the material and an extended interlayer distance. The increased capacity and cycle stability obtained can be attributed to the multifaceted influence of APTES on surface chemistry and ion accessibility. This study investigates the application of functionalized MXene in energy storage systems and highlights the significance of two-electrode measurements in assessing material performance under realistic operating conditions.
Item Type: Article
Uncontrolled Keywords: APTES; defects; EPR spectroscopy; MXene; supercapacitor; surface functionalization
Divisions: Center of Excellence on Nano Diagnostics
Faculty of Engineering and Natural Sciences
Sabancı University Nanotechnology Research and Application Center
Depositing User: Ahmet Güngör
Date Deposited: 22 Dec 2025 15:24
Last Modified: 22 Dec 2025 15:24
URI: https://research.sabanciuniv.edu/id/eprint/52983

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