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March 14, 2026Nanomaterials3 citationsOpen Access

Food Waste-Derived Activated Carbon-Modified Nb2CTx MXene for Supercapacitor Applications

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MTMehmet TopuzFTFatma Coşkun Topuz

Key Points

  • To investigate the structural and electrochemical performance of Nb2CTx MXene modified with food waste-derived activated carbon for supercapacitor applications.
  • Synthesize Nb2CTx:AC composites in varying mass ratios (90:10, 80:20, 70:30) for evaluation.
  • Conduct SEM/EDS, XRD, HR-TEM, XPS, and BET analyses to assess structural characteristics.
  • Perform electrochemical measurements to evaluate specific capacitance and charge transfer resistance.
  • MXAC2 composite showed the highest specific capacitance of 651.84 F·g−1 and excellent performance at high current density.
  • MXAC2 achieved a low charge transfer resistance of 0.023 Ω, indicating effective ion movement.
  • The electrode maintained 82.15% capacitive retention after 10000 cycles, demonstrating its stability and efficiency.

Abstract

In this study, the structural and electrochemical performance of Nb2CTx MXene-based composite electrodes modified with activated carbon (AC) derived from food waste was systematically investigated for supercapacitor applications. Three composites with Nb2CTx:AC mass ratios of 90:10 (MXAC1), 80:20 (MXAC2), and 70:30 (MXAC3) were prepared and comparatively evaluated. SEM/EDS, XRD, HR-TEM, XPS, and BET analyses revealed that, in the MXAC2 composite, activated carbon was homogeneously distributed between the MXene layers, effectively suppressing restacking and promoting the formation of a hierarchical micro/mesoporous structure. XPS results confirmed the preservation of the Nb–C framework and the enrichment of surface functional groups (–O, –OH, and –F). BET analysis demonstrated that MXAC2 possesses an optimized pore architecture that facilitates efficient ion diffusion. Electrochemical measurements revealed that the MXAC2 electrode exhibited the highest specific capacitance at all scan rates and current densities. At 5 mV·s−1, MXAC2 achieved a specific capacitance of 651.84 F·g−1 and maintained a substantial capacitance even at a high current density of 4 A·g−1. EIS analysis confirmed the very low charge transfer resistance (0.023 Ω) and enhanced capacitive behavior for MXAC2. Additionally, MXAC2 has high cycle stability, demonstrating 82.15% capacitive retention and 92.45% coulombic efficiency after 10000 cycles. These results indicate that food waste-derived AC-optimized Nb2CTx MXene composite materials are a strong candidate for sustainable and high-performance supercapacitor electrodes.

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Cite This Study

Topuz et al. (2026) studied this question.

synapsesocial.com/papers/69b4fc6ab39f7826a300d41dhttps://doi.org/10.3390/nano16060349
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