3D Printed Supercapacitors Based on Laser‐derived Hierarchical Nanocomposites of Bimetallic Co/Zn Metal‐Organic Framework and Graphene Oxide

Author:

Mokhtarnejad Mahshid123,Mokhtarinori Narges4,Ribeiro Erick L.1,Kamali Saeed56,Dai Sheng47,Mukherjee Dibyunde13,Khomami Bamin12ORCID

Affiliation:

1. Department of Chemical & Biomolecular Engineering University of Tennessee Knoxville TN 37996 USA

2. Material Research and Innovation Laboratory (MRAIL) University of Tennessee Knoxville TN 37996 USA

3. Nano‐BioMaterials Laboratory for Energy University of Tennessee Knoxville TN 37996 USA

4. Department of Chemistry University of Tennessee Knoxville TN 37996 USA

5. Department of Mechanical Aerospace and Biomedical Engineering University of Tennessee Space Institute Tullahoma TN 37388 USA

6. Department of Physics and Astronomy Middle Tennessee State University Murfreesboro TN 37132 USA

7. Chemical Sciences Division Oak Ridge National Laboratory Oak Ridge TN 37830 USA

Abstract

AbstractSupercapacitors (SCs) have the unique ability to rapidly recharge while providing substantial power output. Metal‐organic frameworks (MOFs) are emerging as promising electrode materials for SCs due to their high porosity, ease of synthesis, tunable pore size distribution, and exceptional structural adaptability. This study presents a facile and cost‐effective method, namely, laser ablation synthesis in solution (LASiS), for the synthesis of bimetallic MOFs composited with reduced graphene oxide (rGO), namely, ZnCo bi‐MOF‐rGO hybrid nanocomposite (HNC). Comprehensive analyses demonstrate that ZnCo bi‐MOF‐rGO has a high specific capacitance of 1092 F g−1 at 1.0 A g−1 in a 0.5 M Na3SO4 electrolyte. In addition, these bi‐MOF‐rGO composites have been successfully integrated with appropriate solvents, viscosity modifiers, in‐house synthesized porous carbon (PC), commercially available graphene, and binders into an active layer ink material for the development of high‐performance 3D printed SCs via sequential inkjet printing. To that end, the way has been paved for the incorporation of this class of material into energy storage applications, particularly in the fabrication of high‐performance printed electronics using laser‐induced materials.

Publisher

Wiley

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