Enhancing Electrochemical Properties of Walnut Shell Activated Carbon with Embedded MnO Clusters for Supercapacitor Applications

Author:

Esteban Daniel Arenas12ORCID,Chamocho Elena García1ORCID,Carretero González Javier3ORCID,Urones Garrote Esteban4ORCID,Otero Díaz Luis Carlos1,Brande David Ávila1ORCID

Affiliation:

1. Inorganic Chemistry Department Faculty of Chemical Sciences Complutense University of Madrid Avenida Complutense s/n 28040 Madrid Spain

2. Electron Microscopy for Materials Science (EMAT) and NANOlab Center of Excellence University of Antwerp Groenenborgerlaan 171 2020 Antwerp Belgium

3. Institute of Polymer Science and Technology, ICTP, CSIC Calle Juan de la Cierva 3 28006 Madrid Spain

4. CNME ELECMI – National Center for Electron Microscopy Faculty of Chemical Sciences Complutense University of Madrid Avenida Complutense s/n 28040 Madrid Spain

Abstract

AbstractActivated carbon (AC) materials from renewable sources are widely used in electrochemical applications due to their well‐known high surface area. However, their application as electrode material in double‐layer electrochemical devices may be limited due to their relatively low electrical conductivity and lightweight. To overcome these limitations, the incorporation of pseudocapacitance metal oxide nanoparticles is an optimum approach. These nanoparticles can provide a second energy storage mechanism to the composite, mitigating the loss of surface area associated with their incorporation. As a result, the composite material is endowed with increased conductivity and higher density, making it more suitable for practical implementation in real devices. In this study, we have incorporated a fine dispersion of 1 % of MnO clusters into a highly porous activated carbon synthesized from walnut shells (WAC). The high‐resolution electron microscopy studies, combined with their related analytical techniques, allow us to determine the presence of the cluster within the matrix carbon precisely. The resulting MnO@WAC composite demonstrated significantly improved capacitive behavior compared with the WAC material, with increased volumetric capacitance and higher charge retention at higher current densities. The composite‘s electrochemical performance suggests its potential as a promising electrode material for supercapacitors, addressing drawbacks associated with traditional AC materials.

Publisher

Wiley

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