Abstract

Over the past few decades, the application of new novel materials in energy storage system has seen excellent development. We report a novel MnCo2O4/NiO nanostructure prepared by a simplistic chemical bath deposition method and employed it as a binder free electrode in the supercapacitor. The synergistic attraction from a high density of active sites, better transportation of ion diffusion and super-most electrical transportation, which deliver boost electrochemical activities. X-ray diffraction, field-emission scanning electron microscopy, and X-ray photoelectron spectroscopy have been used to investigate the crystallinity, morphology, and elemental composition of the as-synthesized precursors, respectively. Cyclic voltammetry, galvanostatic charge/discharge, and electron impedance spectroscopy have been employed to investigate the electrochemical properties. The unique nanoparticle structures delivered additional well-organized pathways for the swift mobility of electrons and ions. The as-prepared binder-free MnCo2O4/NiO nanocomposite electrode has a high specific capacity of 453.3 C g−1 at 1 Ag−1, and an excellent cycling reliability of 91.89 percent even after 4000 cycles, which are significantly higher than bare MnCo2O4 and NiO electrodes. Finally, these results disclose that the as-fabricated MnCo2O4/NiO electrode could be a favored-like electrode material holds substantial potential and supreme option for efficient supercapacitor and their energy storage-related applications.

Highlights

  • IntroductionMixed metal oxides based on first-row transition metals such as Nickel oxide (NiO), Co3 O4 , NiCo2 O4 , MnCo2 O4 , and MnO2 (TMOs) have attracted much attention for both batterytype and pseudocapacitive SC applications due to their enhanced capacities [5,6,7,8,9]

  • Flower-like nanoparticles of MCO/Nickel oxide (NiO) electroactive material were synthesized on nickel foam via a cost-effective chemical bath deposition procedure

  • The as-synthesized precursor was used as a binder-free battery style

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Summary

Introduction

Mixed metal oxides based on first-row transition metals such as NiO, Co3 O4 , NiCo2 O4 , MnCo2 O4 , and MnO2 (TMOs) have attracted much attention for both batterytype and pseudocapacitive SC applications due to their enhanced capacities [5,6,7,8,9]. Due to their strong electrochemical conductivity, rapid redox activity, high theoretical power, and low cost, pseudocapacitive electrodes (e.g., MnO2 and RuO2 ), and battery-type electrode materials exhibit higher energy storage [13,14,15,16]. The MnCo2 O4 /NiO nanocomposite electrode may be a potential supercapacitor electrode material

Materials
Characterization
Results and Discussion
FE-SEM
Conclusions
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