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Updated: Sep 16, 2026

Evaluating the Electrochemical Properties of Supercapacitors using the Three-Electrode System
Published on: January 7, 2022
Biomass-Derived Carbon Electrodes with Defects and Porosity Prepared via Regulated Carbonization Temperature for
Tserenlkham Byambadorj1,2, Jiawei Zhang1, Xuzhen Lu1
1Key Laboratory of Engineering Dielectric and Applications (Ministry of Education), School of Electrical and Electronic Engineering, Harbin University of Science and Technology, Harbin 150080, China.
Abstract:
Biomass-derived carbons hold substantial promise for sustainable electrochemical energy storage due to their low cost, wide availability, and intrinsic heteroatom- and mineral-rich nature. However, the fundamental influence of carbonization temperature on the structural evolution of non-activated biomass-derived carbons remains insufficiently understood. In this work, corn straw-derived carbon (CS) is produced without any chemical additives to isolate the intrinsic effects of carbonization temperature on its physicochemical properties. Systematic temperature variation from 600 to 1000 °C reveals pronounced changes in micro-morphology, pore development, defect density, and the ordering of the carbon matrix, all strongly governed by the inherent mineral content of corn straw. Electrochemical evaluation in alkaline electrolyte demonstrates that CS-800 delivers the highest specific capacitance of 53.8 F g-1 at 1 A g-1 in a three-electrode configuration and maintains favorable rate capability in a symmetric supercapacitor device. The symmetric coin-cell supercapacitor device assembled with CS-800 as the electrodes achieved an energy density of 3.64/5.8 Wh kg-1 and a power density of 5200/750 W kg-1, along with remarkable cycling stability over 30,000 cycles with negligible capacitance loss. Overall, this study provides mechanistic insight into temperature-driven structural evolution in non-activated biomass-derived carbons, offering a fundamental understanding that may guide the rational design and future development of sustainable carbon electrodes for electrochemical energy-storage applications.
