Pyrolyzed Sucrose as a Green Binder for Coconut Shell-Based Activated Carbon Electrodes in Supercapacitors
Abstract
1. Introduction
| Electrode Material | Binder | Electrolyte | Cs (F g−1) | Reference |
|---|---|---|---|---|
| AC:CNT:CB | Binder-Free | 1 M Li2SO4 | 125.6 | [38] |
| AC | Guar gum | 1 M NaCl | 82.2 | [33] |
| Chitosan | 63 | |||
| Casein, CMC, Gelatin | 30–36 | |||
| AC | Na-CMC Natural cellulose | 1 M Na2SO4 1 M Et2NBF4 PYR14TFSI | 70–80 | [32] |
| AC | PVP and PVDF | 1.5 M H2SO4 | 132.3 | [39] |
| Graphite | PVDF | 1 M H2SO4 | 16.2 | [25] |
| PPy/GO/ZnO | Binder free | 1 M Na2SO4 | 94.6 | [40] |
| AC | Potato starch: Guar gum | 1 M TEABF4 | 26.0 | [31] |
| AC | MFC | 6 M KOH | 85–90 | [41] |
| AC | Sugar Binder | 2.5 M H2SO4 | 74.35 | This work |
2. Materials and Methods
2.1. Experimental Materials
2.2. Preparation of AC Powder
2.3. Device Fabrication and Characterization
2.4. Characterization of the Samples
3. Results and Discussion
3.1. Characterization of AC, Sugar, and Its Pyrolyzed Products
3.2. Sheet Resistance of AC Samples Bonded by Sugar
3.3. EDLC Characterization
3.3.1. Determination of Optimum Binder Percentage
3.3.2. Finding the Optimum Sintering Temperature and Time
3.3.3. Electrochemical Characterization of Optimized EDLC
4. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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| AC: Sugar | 1:1 | 1:1.5 | 1:2 | 1:2.5 | 1:3 |
| Cs (F g−1) | 17.84 | 35.15 | 74.35 | 66.1 | 60.54 |
| Scan rate (mV s−1) | 5 | 10 | 20 | 50 | 100 | 200 |
| Cs (F g−1) | 75.73 | 74.35 | 68.57 | 67.63 | 60.18 | 42.47 |
| Impedance Parameters | Before Charge/Discharge Cycling | After 1000 Cycles | Units |
|---|---|---|---|
| R1 | 1.04 | 1.22 | Ω |
| R2 | 2.15 | 5.33 | Ω |
| Q1 | 1.45 × 10−4 | 1.87 × 10−4 | F s n−1 |
| Q2 | 0.13 | 0.10 | F s n−1 |
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© 2026 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license.
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Kumarage, P.M.; Gamage, D.S.; Medagedara, A.T.; Weerasinghe, M.I.U.; Jayathilaka, S.P.; Rathnayake, A.M.; Deegala, S.B.; Rajapakse, R.M.G.; Tennakone, K.; Dahanayake, U.; et al. Pyrolyzed Sucrose as a Green Binder for Coconut Shell-Based Activated Carbon Electrodes in Supercapacitors. Appl. Nano 2026, 7, 19. https://doi.org/10.3390/applnano7030019
Kumarage PM, Gamage DS, Medagedara AT, Weerasinghe MIU, Jayathilaka SP, Rathnayake AM, Deegala SB, Rajapakse RMG, Tennakone K, Dahanayake U, et al. Pyrolyzed Sucrose as a Green Binder for Coconut Shell-Based Activated Carbon Electrodes in Supercapacitors. Applied Nano. 2026; 7(3):19. https://doi.org/10.3390/applnano7030019
Chicago/Turabian StyleKumarage, Prabhasha Manodya, Dileep Sandakelum Gamage, Asiri Thimal Medagedara, Muthugalage Ishara Umayangani Weerasinghe, Sadith Punsara Jayathilaka, Athulya Methsisi Rathnayake, Senuka Bandara Deegala, Rajapakse Mudiyanselage Gamini Rajapakse, Kirthi Tennakone, Uthpala Dahanayake, and et al. 2026. "Pyrolyzed Sucrose as a Green Binder for Coconut Shell-Based Activated Carbon Electrodes in Supercapacitors" Applied Nano 7, no. 3: 19. https://doi.org/10.3390/applnano7030019
APA StyleKumarage, P. M., Gamage, D. S., Medagedara, A. T., Weerasinghe, M. I. U., Jayathilaka, S. P., Rathnayake, A. M., Deegala, S. B., Rajapakse, R. M. G., Tennakone, K., Dahanayake, U., Bandara, W. J., Yoshimura, M., & Kumara, G. R. A. (2026). Pyrolyzed Sucrose as a Green Binder for Coconut Shell-Based Activated Carbon Electrodes in Supercapacitors. Applied Nano, 7(3), 19. https://doi.org/10.3390/applnano7030019

