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February 14, 2026The Journal of Physical Chemistry B0 citations

Enhanced Supercapacitor Performance via Double Network Hydrogel Modified with Self-Assembled Metal Nanoparticles

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MRMd. Aminur RahmanBangladesh Council of Scientific and Industrial ResearchCRChanchal Kumar RoyBangladesh University of Engineering and TechnologyKHKamrul HasanBangladesh University of Engineering and Technology

Key Points

  • The aim is to enhance the performance of supercapacitors using a modified double-network hydrogel filled with metal nanoparticles.
  • Synthesis of double-network hydrogel through physical and chemical cross-linking.
  • In situ reduction of metal ions to form nanoparticles within the hydrogel network.
  • Fabrication of a flexible supercapacitor using nanocomposite hydrogel and activated carbon nanosheets for active material.
  • Evaluation of electrochemical performance in a symmetric two-electrode configuration using sodium sulfate as the electrolyte.
  • Achieved an areal specific capacitance of 1361 mF cm^-2.
  • Demonstrated an energy density of 23 mWh cm^-2 and a power density of 700 mW cm^-2.
  • Retained 94% of initial Coulombic efficiency after 500 cycles during cyclic stability tests.

Abstract

Double-network (DN) hydrogels have emerged as promising candidates for flexible supercapacitor applications due to their exceptional mechanical toughness and flexibility. However, their practical use has been limited by poor electrolyte retention and low ionic conductivity, which hinder capacitive performance. In this study, we present a novel DN hydrogel modified through the self-assembly of metal nanoparticles to address these limitations. The hydrogel was synthesized via a combination of physical and chemical cross-linking, followed by in situ reduction of incorporated metal ions to form nanoparticles within the network. The resulting nanocomposite hydrogel exhibited enhanced electrolyte swelling capacity and improved ionic conductivity and maintained robust mechanical flexibility. A flexible supercapacitor (FSC) was fabricated using this modified DN hydrogel as both the electrode and solid-state electrolyte, with activated carbon nanosheets (ACNSs) derived from banana leaves serving as the active material. The ACNSs adhered effectively to the hydrogel matrix with the aid of a polyvinylidene fluoride (PVDF) binder. Electrochemical performance was evaluated in a symmetric two-electrode configuration using 0.5 M sodium sulfate aqueous solution as the supporting electrolyte. The device achieved a high areal specific capacitance (Csp) of 1361 mF cm-2, an energy density (E) of 23 mWh cm-2, and a power density (P) of 700 mW cm-2. Furthermore, the FSC demonstrated excellent cyclic stability, retaining 94% of its initial Coulombic efficiency after 500 cycles. These findings highlight the potential of metal nanoparticle-enriched DN hydrogels as multifunctional materials for next-generation integrated supercapacitors.

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Cite This Study

Rahman et al. (2026) studied this question.

synapsesocial.com/papers/699011932ccff479cfe584d7https://doi.org/10.1021/acs.jpcb.5c07038
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