CVD-Grown Carbon Nanofibers on Knitted Carbon Fabric for Enhanced Supercapacitor Performance
Abstract
1. Introduction
2. Materials and Methods
3. Results and Discussion
3.1. Morphological and Microstructural Features of CNF/CF Composites
3.2. Electrochemical Properties of CNFs/CF
- (i)
- A high-frequency region: For an ideal supercapacitor, the curve in this area should be perpendicular to the horizontal axis when a high-frequency signal is introduced. Nevertheless, because Faraday reactions take place on the electrode surface, the typical feature observed here is a semicircle. As such, this region is used to assess the Faraday impedance of the electrode materials. The semicircle’s size is associated with the material’s morphology and conductivity. Its diameter represents the charge transfer resistance (Rct) at the electrode–electrolyte interface, while the X-axis intercept of the semicircular curve reflects the electrode resistance (Rt), which is primarily linked to electrolyte resistance (Rs), the internal resistance of the active material (Rm), and the contact resistance (Rc) between the collector and the electrolyte.
- (ii)
- A medium-frequency region: Commonly referred to as the Warburg region, this area typically features a straight line with a 45° slope, corresponding to semi-infinite Warburg impedance (Rw). By extending the line in the reverse direction, the intersection of the X-axis can characterize the value of Rw.
- (iii)
- A low-frequency region: In this region, a vertical line emerges, caused by ion accumulation at the bottom of the electrode material’s pores. The closer this line is to being parallel to the y-axis, the more the device approaches the behavior of an ideal capacitor [17].
4. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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| Scan Rates (mV/s) | 5 | 10 | 20 | 50 | 100 | 200 |
|---|---|---|---|---|---|---|
| The specific capacitance of 25 nm-CNFs/CF (F/g) | 77.0 | 72.8 | 68.0 | 59.0 | 49.1 | 36.3 |
| The specific capacitance of 50 nm-CNFs/CF (F/g) | 46.8 | 44.7 | 42.7 | 39.1 | 34.9 | 28.3 |
| Current Density (A/g) | 0.1 | 0.2 | 0.5 | 1 | 2 |
|---|---|---|---|---|---|
| The specific capacitance of 25 nm-CNFs/CF (F/g) | 87.5 | 82.2 | 76.7 | 72.8 | 67.6 |
| The specific capacitance of 50 nm-CNFs/CF (F/g) | 50.2 | 47.5 | 44.8 | 42.8 | 40.0 |
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Jia, X.; Wang, J.; Dang, J. CVD-Grown Carbon Nanofibers on Knitted Carbon Fabric for Enhanced Supercapacitor Performance. Crystals 2025, 15, 1049. https://doi.org/10.3390/cryst15121049
Jia X, Wang J, Dang J. CVD-Grown Carbon Nanofibers on Knitted Carbon Fabric for Enhanced Supercapacitor Performance. Crystals. 2025; 15(12):1049. https://doi.org/10.3390/cryst15121049
Chicago/Turabian StyleJia, Xiaojing, Jiangsan Wang, and Jing Dang. 2025. "CVD-Grown Carbon Nanofibers on Knitted Carbon Fabric for Enhanced Supercapacitor Performance" Crystals 15, no. 12: 1049. https://doi.org/10.3390/cryst15121049
APA StyleJia, X., Wang, J., & Dang, J. (2025). CVD-Grown Carbon Nanofibers on Knitted Carbon Fabric for Enhanced Supercapacitor Performance. Crystals, 15(12), 1049. https://doi.org/10.3390/cryst15121049

