The Effect of Electric Field on Charcoal Conductivity in Supercapacitor Applications: Tectona Grandis Carbon and NaCl Electrolyte
Effect of Electric Field on Charcoal Conductivity in Supercapacitor Applications: Tectona Grandis Carbon and NaCl Electrolyte
Keywords:
Activated Carbon, Charcoal, Supercapasitor, NaCl, ConductivityAbstract
One of the biggest challenges in the application of renewable energy is efficient and sustainable energy storage. In this case, supercapacitors can be a solution as an efficient and sustainable energy storage. This study aims to determine how the relationship between activated carbon charcoal with NaCl as an electrolyte solution, as well as the potential generated by using variations in the concentration of electrolyte solution as much as 1 M, 2M, and 3 M. Characterisation tests conducted in this study include PSA (Particle Size Analyze) test to determine the particle size contained in wood charcoal activated carbon and XRD (X-Ray Difraction) to determine the composition of the material in wood charcoal activated carbon. The results showed that based on the PSA and XRD characteristics test, wood charcoal activated carbon has a particle arrangement measuring 327 nm which is suitable for supercapacitor applications and has an amorphous shape which is also a form of carbon suitable for supercapacitor applications, based on experimental results there is a relationship between wood charcoal activated carbon and NaCl as an electrolyte solution, and the potential associated with the output value of voltage, output value of electric current, and output value of capacitance produced by supercapacitors.
References
A. N. Watulingas, A. M. Rampengan, F. R. Tumimomor, D. R. Wenas, And J. G. N. Nusa, “Pemanfaatan Karbon Aktif Eceng Gondok ( Eichhornia Crassipes ) Sebagai Material Elektroda Superkapasitor Dengan Variasi Kosentrasi Elektrolit Utilization Of Water Hyacinth ( Eichhornia Crassipes ) Activated Carbon As Electrode Material For Supercapacitors With Variations In Electrolyte Concentration,” Vol. 7, No. 2, 2024.
A. K. M. Sami D. Salman1, Israa M. Rasheed1, “Adsorption Of Heavy Metal Ions Using Activated Carbon Derived From Eichhornia ( Water Hyacinth ) Adsorption Of Heavy Metal Ions Using Activated Carbon Derived From Eichhornia ( Water Hyacinth )”, Doi: 10.1088/1755-1315/779/1/012074.
C. Tsai And W. Tsai, “Optimization Of Physical Activation Process By Co 2 For Activated Carbon Preparation From Honduras Mahogany Pod Husk,” Pp. 1–11, 2023.
F. Reynol And S. Christin, “Pemanfaatan Karbon Aktif Dari Sabut Kelapa Sebagai Elektroda Superkapasitor,” Vol. 3, No. 1, Pp. 13–18, 2018.
F. Tumimomor, A. Maddu, And G. Pari, “Utilization Of Bamboo Based Activated Carbon As Supercapacitor Electrode,” 2025.
K. Gajewska, A. Moyseowicz, And D. Minta, “Materials Effect Of Electrolyte And Carbon Material On The Electrochemical Performance Of High-Voltage Aqueous Symmetric Supercapacitors,” Pp. 1721–1738, 2023, Doi: 10.1007/S10853-023-08148-5.
M. Z. Iqbal, S. Zakar, And S. S. Haider, “Role Of Aqueous Electrolytes On The Performance Of Electrochemical Energy Storage Device,” J. Electroanal. Chem., Vol. 858, P. 113793, 2020, Doi: 10.1016/J.Jelechem.2019.113793.
Mendhe, A. and Panda, H.. (2023). A review on electrolytes for supercapacitor device, Springer, (July). Available at: https://doi.org/10.1007/s43939-023-00065-3.
Natalia, K., & Taer, E. (2019). Pengaruh Suhu Aktivasi Terhadap Sifat Fisis dan Elektrokimia Elektroda Superkapasitor dari Limbah Daun Akasia (Acacia Mangium Wild). Indonesian Physics Communication, 16(2), 81-86.
P. Sharma And V. Kumar, “Materials Today : Proceedings Study Of Electrode And Electrolyte Material Of Supercapacitor,” Mater. Today Proc., No. Xxxx, 2020, Doi: 10.1016/J.Matpr.2020.04.694.
R. Zakaria, N. A. Jamalluddin, M. Zailani, And A. Bakar, “Results In Materials Effect Of Impregnation Ratio And Activation Temperature On The Yield And Adsorption Performance Of Mangrove Based Activated Carbon For Methylene Blue Removal,” Results Mater., Vol. 10, No. April, P. 100183, 2021, Doi: 10.1016/J.Rinma.2021.100183.
Rajapriya, A., Keerthana, S. and Ponpandian, N. (2023). Fundamental understanding of charge storage mechanism, Smart Supercapacitors: Fundamentals, Structures, and Applications, 65–82. Available at: https://doi.org/10.1016/B978-0-323-90530-5.00034-4.
Samantaray, S. et al. (2023). Unleashing recent electrolyte materials for next-generation supercapacitor applications: A comprehensive review, Journal of Energy Storage, 72(November). Available at: https://doi.org/https://doi.org/10.1016/j.est.2023.108352.
V. K. And S. C. P. Parnia Forouzandeh *, “Electrode Materials For Supercapacitors : A Review Of,” 2020.
Zuleta, M., Björnbom, P., & Lundblad, A. (2004). Effects of pore surface oxidation on electrochemical and mass-transport properties of nanoporous carbon. Journal of The Electrochemical Society, 152(2), A270.
Zulhamida, Z., & Putra, A. (2024). Sintesis dan Karakterisasi Elektroda Superkapasitor Berbasis Karbon Akrif Limbah Tongkol Jagung. Jurnal Pendidikan Tambusai, 8(2), 19505-19516.
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