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June 1, 2026Chinese Journal of Chemical Engineering0 citationsOpen Access

Ultrahigh Cobalt-Loading Composite Electrode Material for Wearable Supercapacitors

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KCKangqi ChangWTWenke TanZLZiyu Liu

Key Points

  • The aim is to develop a composite electrode material with high cobalt loading to improve supercapacitor performance.
  • Synthesis of a metal ionic liquid-mediated carbon composite with ultrahigh cobalt nanoparticle loading.
  • Characterization of the optimized membrane structure for electronic conductivity.
  • Fabrication of a symmetric supercapacitor using H-Co-CF material.
  • H-Co-CF shows a specific capacitance of 759.3 F·g -1 at 1 A·g -1 and 303.7 F·g -1 at 50 A·g -1.
  • The symmetric supercapacitor demonstrates a specific capacitance of 751.9 F·g -1 at 1 A·g -1, retaining 300.8 F·g -1 at 50 A·g -1.
  • An energy density of 169.2 Wh·kg -1 at a power density of 900 W·kg -1 is achieved.

Abstract

Cobalt nanocomposites have garnered significant attention for high-performance supercapacitors due to their high redox activity, multi-electron transfer capability, and wide operating voltage window. However, their practical application remains hindered by limited nanoparticle loading and poor cycling stability. This study reports the synthesis of a metal ionic liquid-mediated carbon composite with ultrahigh loading of cobalt nanoparticles (denoted as H-Co-CF) and its application as a supercapacitor electrode material. The optimized nanoparticle-rich nanofiber composite membrane structure enhances electronic conductivity, expands the voltage window to 1.8 V, and ensures operational stability. The H-Co-CF electrode demonstrates a high specific capacitance of 759.3 F·g -1 at a current density of 1 A·g -1 , along with an outstanding rate capability of 303.7 F·g -1 even at 50 A·g -1 . A symmetric supercapacitor fabricated using H-Co-CF achieves remarkable performance metrics: a specific capacitance of 751.9 F·g -1 at 1 A·g -1 , which retains 300.8 F·g -1 at 50 A·g -1 , and delivers an energy density of 169.2 Wh·kg -1 at a power density of 900 W·kg -1 . These advancements originate from the synergistic effect between the uniquely structured fibrous membrane and the high-loading cobalt nanoparticles, positioning H-Co-CF as a promising transformative material for next-generation wearable energy storage devices.

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Cite This Study

Chang et al. (2026) studied this question.

synapsesocial.com/papers/6a1d226d02fbce9130638251https://doi.org/10.1016/j.cjche.2026.04.014
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