Investigations of Activated Carbon from Different Natural Sources for Preparation of Binder-Free Few-Walled CNTs/Activated Carbon Electrodes

Author:

Taurbekov Azamat123,Abdisattar Alisher14,Atamanov Meiram12,Kaidar Bayan1,Yeleuov Mukhtar134,Joia Reza2ORCID,Amrousse Rachid5ORCID,Atamanova Tolganay12

Affiliation:

1. Institute of Combustion Problems, 172 Bogenbay Batyr Str., Almaty 050012, Kazakhstan

2. Faculty of Chemistry and Chemical Technology, Al Farabi Kazakh National University, 71 Al-Farabi Ave., Almaty 050040, Kazakhstan

3. Bes Saiman Group, 171a Zharokov Str., Almaty 050057, Kazakhstan

4. Institute of Combustion Problems, Satbayev University, 22a Satpaev Str., Almaty 050013, Kazakhstan

5. Faculty of Sciences, University of Chouaib Doukkali, El Jadida 24000, Morocco

Abstract

In this study, we present another approach to fabricating high-performance supercapacitor electrodes by combining activated carbon particles with carbon nanotubes (AC/CNT). We synthesized activated carbon from diverse biomass sources using a carbonization process and chemical activation with KOH. By incorporating carbon nanotubes, we significantly augmented the electrode’s surface area, resulting in exceptional ion transport and a substantial increase in specific capacitance. Our investigation reveals that the optimized composition, 85:10:5 of AC, CNT, and conductive additive, achieved outstanding specific capacitance values, notably 125.6 F g−1 at 1 mV s−1 and 118 F g−1 at 1 A g−1, along with a maximum energy density of 4 Wh kg−1. Electrochemical impedance spectroscopy (EIS) further demonstrated the superior charge transfer capabilities of these electrodes, notably at a frequency range from 100 kHz to 10 mHz. Additionally, our research highlights the influence of different biomass precursors, such as apricot kernels, walnut shells, and rice husks, on the electrochemical behavior of these electrodes. Overall, this study provides valuable insights into the development of high-performance supercapacitors, emphasizing the potential of diverse biomass sources in optimizing electrode materials.

Funder

Science Committee of the Ministry of Science

Publisher

MDPI AG

Subject

Engineering (miscellaneous),Ceramics and Composites

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