<p>One of the biggest challenges remaining is the synthesis of a high specific capacitance supercapacitor material that is both economically feasible and efficient for use in electronics. In this instance, this study describes the synthesis of a NiMoS<sub>4</sub>@rGO nanocomposite using a hydrothermal approach and annealing. A major factor in raising the specific capacitance of supercapacitors is the morphology of NiMoS<sub>4</sub>@rGO. Generally speaking, a morphology with a thin electrolytic dielectric characteristic and a high surface area is essential. Galvanostatic charge–discharge (GCD) and cyclic voltammetry (CV) methods were used to analyze their electrochemical behavior of NiMoS<sub>4</sub>@rGO electrodes. Due to its structure, the as-fabricated NiMoS<sub>4</sub>@rGO electrode displays an impressive cyclic performance of 95% after 10,000 consecutive charge–discharge cycles in an aqueous 1&#xa0;M KOH electrolyte on a three-electrode configuration, as well as a high specific capacity of 1910 Fg<sup>−1</sup> at 1 Ag<sup>−1</sup>. Furthermore, with improved durability, the sandwiched NiMoO<sub>4</sub>@rGO//Activated carbon asymmetric supercapacitor device demonstrated a sufficient energy density of 40.44 Whkg<sup>−1</sup>at a power density of 780 Wkg<sup>−1</sup>. The creation of electrodes with great potential for use in next-generation energy storage devices is greatly motivated by these electrochemical activities.</p>

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Synthesis of porous NiMoS4@Reduced graphene oxide hybrid composites for asymmetric supercapacitor applications

  • C. Anitha Devi,
  • L. Chandra,
  • M. Parthibavarman,
  • K. L. Meghanathan,
  • A. Rathinam,
  • Hamad Al-Lohedan,
  • Ranjith Balu

摘要

One of the biggest challenges remaining is the synthesis of a high specific capacitance supercapacitor material that is both economically feasible and efficient for use in electronics. In this instance, this study describes the synthesis of a NiMoS4@rGO nanocomposite using a hydrothermal approach and annealing. A major factor in raising the specific capacitance of supercapacitors is the morphology of NiMoS4@rGO. Generally speaking, a morphology with a thin electrolytic dielectric characteristic and a high surface area is essential. Galvanostatic charge–discharge (GCD) and cyclic voltammetry (CV) methods were used to analyze their electrochemical behavior of NiMoS4@rGO electrodes. Due to its structure, the as-fabricated NiMoS4@rGO electrode displays an impressive cyclic performance of 95% after 10,000 consecutive charge–discharge cycles in an aqueous 1 M KOH electrolyte on a three-electrode configuration, as well as a high specific capacity of 1910 Fg−1 at 1 Ag−1. Furthermore, with improved durability, the sandwiched NiMoO4@rGO//Activated carbon asymmetric supercapacitor device demonstrated a sufficient energy density of 40.44 Whkg−1at a power density of 780 Wkg−1. The creation of electrodes with great potential for use in next-generation energy storage devices is greatly motivated by these electrochemical activities.