4.6 Article

Transition metal oxide assisted quaternary nanoarchitectonics based composite towards enhanced electrochemical energy storage performance

Journal

Publisher

SPRINGER HEIDELBERG
DOI: 10.1007/s00339-023-06661-7

Keywords

Nanocomposites; Transition metal; Electrochemistry; Supercapacitor

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In this study, the effect of transition metal oxide -(Co3O4/Fe3O4) nanoparticles on the electrochemical energy storage performance of ZnO-GO-PANI nanocomposites was compared. The results showed that the quaternary nanoarchitectonics composites of -Co3O4-ZnO-GO-PANI (S1) and -Fe3O4-ZnOGO-PANI (S2) exhibited layered fibrous structure and formed a porous and mesh-like network. Electrochemical analyses revealed that S1 had better performance with a higher specific capacitance (246.33 F/g) compared to S2 (110.17 F/g) due to the higher reduction potential of Co. The enhanced ionic intercalation and improved electrical conductivity of S1 contributed to its superior energy storage performance. Therefore, the -Co3O4-ZnO-GO-PANI nanoarchitectonics composite can be a promising electrode material for high-performance energy storage devices.
Herein, we report the large- scale synthesis and compare the effect of transition metal oxide -(Co3O4/Fe3O4) nanoparticles assistance on electrochemical energy storage performance of zinc oxide ( ZnO)-graphene oxide (GO)-polyaniline (PANI) nanocomposites. The resultant quaternary nanoarchitectonics composites of -Co3O4-ZnO-GO-PANI (S1) and -Fe3O4-ZnOGO-PANI (S2) exhibit layered fibrous structure on the surface, where these fibers form a porous and mesh-like network. The systematic electrochemical analyses reveal that S1 has better electrochemical performance as compared to S2. Specifically, S1 has a higher specific capacitance (246.33 F/g) relative to S2 (110.17 F/g) at a current density of 1 A/g due to higher reduction potential of Co (+ 1.81 V) than that of Fe (0.77 V). This higher potential causes Co to be more reactive in the redox transitions than Fe. Moreover, the enhanced ionic intercalation and improved electrical conductivity associated with their specific morphology plays a role to enhance the energy storage performances. Therefore, -Co3O4-ZnO-GO-PANI nanoarchitectonics composite can be used as a promising electrode material for high-performance energy storage device fabrication.

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