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Updated: Aug 12, 2025

Evaluating the Electrochemical Properties of Supercapacitors using the Three-Electrode System
Published on: January 7, 2022
Biosourced quinones for high-performance environmentally benign electrochemical capacitors via interface engineering
Abdelaziz Gouda1,2, Alexandre Masson3, Molood Hoseinizadeh3
1Department of Engineering Physics, Polytechnique Montreal, C.P. 6079, Succ. Centre-ville, Montreal, Quebec, H3C 3A7, Canada. abdelaziz.gouda@utoronto.ca.
Sustainable energy storage is advanced using biosourced organic electrode materials like Sepia melanin and catechin/tannic acid (Ctn/TA) in electrochemical capacitors. These materials offer high capacitance and excellent cycle stability for renewable energy applications.
Area of Science:
- Materials Science
- Electrochemistry
- Renewable Energy
Background:
- Growing demand for sustainable energy storage solutions.
- Need for advanced electrode materials that are both biosourced and biodegradable.
- Limitations of conventional electrode materials in terms of environmental impact and performance.
Purpose of the Study:
- To develop and investigate biosourced organic electrode materials for high-performance electrochemical capacitors.
- To evaluate the electrochemical performance, stability, and energy storage capabilities of Sepia melanin and catechin/tannic acid (Ctn/TA) based electrodes.
- To demonstrate the potential of these materials for sustainable renewable energy storage.
Main Methods:
- Solution-deposition of Sepia melanin and Ctn/TA on carbon paper to create high-performance interfaces.
- Fabrication of symmetric electrochemical capacitors using these engineered electrodes.
- Electrochemical characterization including capacitance, cycle life, coulombic efficiency, power density, and energy density measurements in aqueous electrolytes.
Main Results:
- Sepia melanin and Ctn/TA electrodes achieved high capacitance values of 1355 mF cm⁻² (452 F g⁻¹) and 898 mF cm⁻² (300 F g⁻¹), respectively.
- Capacitors demonstrated excellent stability with up to 100% capacitance retention over 50,000 (Sepia melanin) and 10,000 (Ctn/TA) cycles.
- High power densities (up to 1274 mW cm⁻²) and energy densities (up to 0.65 mWh cm⁻²) were achieved for both electrode materials.
Conclusions:
- Biosourced and biodegradable organic electrode materials, specifically Sepia melanin and Ctn/TA, show significant promise for sustainable electrochemical energy storage.
- The engineered electrode interfaces facilitate high capacitance and long-term cycling stability.
- These findings contribute to the development of environmentally friendly and high-performance energy storage devices.
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