Aromatic biomass (torch ginger) leaf-derived three-dimensional honeycomb-like carbon to enhance gravimetric supercapacitor.
Autor: | Taer E; Department of Physics, University of Riau, Pekanbaru, Indonesia., Yanti N; Department of Physics, University of Riau, Pekanbaru, Indonesia., Padang E; Department of Physics, University of Riau, Pekanbaru, Indonesia., Apriwandi A; Department of Physics, University of Riau, Pekanbaru, Indonesia., Zulkarnain Z; Department of Physics, University of Riau, Pekanbaru, Indonesia., Haryanti NH; Department of Physics, University of Lambung Mangkurat, Banjarmasin, Indonesia., Deraman M; School of Applied Physics, Faculty of Science and Technology, Universiti Kebangsaan Malaysia, Bangi, Malaysia., Taslim R; Department of Industrial Engineering, State Islamic University of Sultan Syarif Kasim Riau, Pekanbaru, Indonesia. |
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Jazyk: | angličtina |
Zdroj: | Journal of the science of food and agriculture [J Sci Food Agric] 2023 Dec; Vol. 103 (15), pp. 7411-7423. Date of Electronic Publication: 2023 Jul 22. |
DOI: | 10.1002/jsfa.12846 |
Abstrakt: | Background: Porous carbon electrode (PCE) is identified as a highly suitable electrode material for commercial application due to its production process, which is characterized by simplicity, cost-effectiveness and environmental friendliness. PCE was synthesized using torch ginger (Etlingera elatior (Jack) R.M. Smith) leaves as the base material. The leaves were treated with different concentrations of ZnCl Results: From the characterization of physical properties, PCE-0.3 had an impressive amorphous porosity, wettability and 3D honeycomb-like structural morphology with a pore framework consisting of micropores and mesopores. According to the structural advantages of 3D hierarchical pores such as interconnected honeycombs, PCE-0.3 as supercapacitor electrode had a high specific capacitance of up to 285.89 F g -1 at 1 A. Furthermore, the supercapacitor exhibited high energy and power density of 21.54 Wh kg -1 and 161.13 W kg -1 , respectively, with a low internal resistance of 0.059 Ω. Conclusion: The results indicated that 3D porous carbon materials such as interconnected honeycombs derived from the aromatic biomass of torch ginger leaves have significant potential for the development of sustainable energy storage devices. © 2023 Society of Chemical Industry. (© 2023 Society of Chemical Industry.) |
Databáze: | MEDLINE |
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