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article · Electrochemistry Communications

Superior electrochemical performance of CuS/FeSe2 for advanced asymmetric supercapacitor applications

20259 citationsOpen accessWollo University

Abstract

Supercapacitor devices face significant challenges, including limited energy density , high self-discharge rates, and poor performance over extended cycling. The present study developed a high-performance asymmetric supercapacitor using novel CuS/FeSe 2 nanocomposites fabricated using a scalable wet chemical method . The CuS/FeSe 2 nanocomposites exhibited exceptional electrochemical performance, including significant capacitance and redox behavior improvements. Integrating two pseudocapacitive materials in a three-electrode configuration exhibited a synergistic effect, substantially reducing resistance and surpassing individual CuS and FeSe 2 electrodes. The CuS/FeSe₂ nanocomposite demonstrated the highest Cs among the electrodes, achieving 821.3 Fg −1 at 1 Ag −1 , surpassing the performance of the individual CuS (248.3 Fg −1 ) and FeSe₂ (508 Fg −1 ) electrodes along with 80.4 % retention. The asymmetric supercapacitor (CuS/FeSe 2 ||AC) demonstrated excellent cycling stability, retaining 90.1 % of its initial capacity after 7000 continuous charge/discharge cycles at the highest current rate. Operating at a voltage cutoff of 1.6 V in an aqueous electrolyte , it achieved a high energy density of 51.1 Wh/kg, delivering power at 2426.3 W/kg, and exhibiting a specific capacitance of 143.6 F/g. The CuS/FeSe 2 nanocomposite shows significant potential for high-performance energy storage devices, particularly for developing next-generation asymmetric supercapacitors.

Research topics

  • Supercapacitor Materials and Fabrication
  • Electrocatalysts for Energy Conversion
  • Advancements in Battery Materials

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DOI: 10.1016/j.elecom.2025.107915

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