Impact of Preprocessing of Graphene Additive via Ultrasonication on the Electrochemical Performance of Activated Carbon‐Based Supercapacitors

Author:

Chameh Behnam1,Shaker Majid23ORCID,Shahalizade Taieb45ORCID,Sadeghi Ghazvini Aliasghar6ORCID,Saznaghi Maryam Hemmati57,Farhadi Saeed5,Shahroudi Hamideh58ORCID,Raissi Babak8,Aghaei Alireza8,Yaghmaee Maziar Sahba8,Riahifar Reza8ORCID

Affiliation:

1. Department of Technical Physics University of Eastern Finland 70210 Kuopio Finland

2. Chongqing 2D Material Institute Liangjiang New Area Chongqing 400714 China

3. Lehrstuhl für Physikalische Chemie II Universität Erlangen-Nürnberg Erlangen 91058 Germany

4. School of Chemistry College of Science University of Tehran P.O. Box 14155-6455 Tehran Iran

5. R&D Center Parthian Battery Novin Co. Ltd. Tehran 3313193685 Iran

6. Department of Materials Science and Engineering Tarbiat Modares University Tehran 14115-111 Iran

7. Department of Materials and Metallurgical Engineering Amirkabir University of Technology (Tehran Polytechnic) Tehran 15875-4413 Iran

8. Department of Nano Technology and Advanced Materials Materials and Energy Research Center Karaj 3177983634 Iran

Abstract

This article investigates the influence of the addition method of graphene to activated carbon (AC) on the electrochemical performance of the fabricated electric double‐layer capacitors (EDLCs). To do so, the same graphene material is introduced to the other electrode slurry materials either in the form of a powder (GP) or a suspension (GL). It is discovered that the introduction of graphene already dispersed by ultrasonic in a suspension to AC has a better effect on the electrochemical performance of the fabricated EDLCs than directly employing its powder. GL EDLC achieves the highest capacitance of 54 F g−1 at a current density of 0.05 A g−1 in an organic electrolyte, which is much better than the GP EDLC (41.9 F g−1) and about 77% more than AC EDLC. Moreover, after cycling at various current densities (2000 cycles), GL EDLC maintains 28.8 F g−1 of its capacitance with 99.4% coulombic efficiency at a current density of 1 A g−1. Finally, GL EDLC exhibits 35.8 and 21.4 Wh kg−1 energy densities at 50.2 and 1102.8 W kg−1 power densities, respectively. The better performance of GL EDLC in comparison with GP EDLC is ascribed to better graphene dispersion.

Publisher

Wiley

Subject

General Energy

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