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Updated: Jan 10, 2026

Evaluating the Electrochemical Properties of Supercapacitors using the Three-Electrode System
Published on: January 7, 2022
Enhanced pseudocapacitive performance of a Pb-based MOF/FCNT composite for high-stability supercapacitor
Mohammad Yasir Khan1, Ahmad Husain2,3, Sara A Alqarni4
1Functional Inorganic Materials Lab (FIML), Department of Chemistry, Aligarh Muslim University, Aligarh 202002, India. shahid81chem@gmail.com.
Abstract:
As society moves towards a low-carbon future, the global emphasis on efficient and sustainable energy storage platforms increases and has intensified the search for advanced electrode materials that offer high capacitance, fast charge-discharge capability, and long-term cycling stability. However, most conventional materials suffer from limited electrical conductivity, poor rate performance, or structural degradation over extended cycling. To address these limitations, a novel composite electrode material based on a Pb-based MOF (YK-2) and functionalized carbon nanotubes (FCNTs) was developed and systematically studied. A series of composites, YK-2@FCNT(5), YK-2@FCNT(10), and YK-2@FCNT(15), were successfully synthesized and thoroughly investigated by cyclic voltammetry (CV), galvanostatic charge-discharge (GCD), and electrochemical impedance spectroscopy (EIS) in a three-electrode system. Among them, YK-2@FCNT(10) demonstrated the highest specific capacitance of 913.57 F g-1 at 0.5 A g-1, significantly outperforming the pristine YK-2 electrode. EIS analysis revealed a marked reduction in both solution and charge transfer resistance due to the incorporation of FCNTs, enhancing conductivity and ion diffusion. Dunn's method further confirmed a mixed charge storage mechanism with a b-value of 0.747, where the proportion of capacitive contribution rose significantly from 32.02% to 65.33% as the scan rate increased from 5 to 80 mV s-1. Additionally, YK-2@FCNT(10) retained 92.87% of its initial capacitance even after 5000 consecutive charge-discharge cycles at 10 A g-1, indicating excellent long-term electrochemical stability. Furthermore, a symmetrical supercapacitor device assembled using YK-2@FCNT(10) electrodes delivered a high specific capacitance of 216.9 F g-1 at 0.5 A g-1 and maintained an excellent cycling stability of 86.67% over 5000 cycles. The device also achieved a remarkable energy density of 30.12 Wh kg-1 and a maximum power density of 4998.69 W kg-1, confirming its strong potential for practical high-performance energy storage applications.
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