Optimization of Atmospheric Pressure Plasma Jet with Single-Pin Electrode Configuration and Its Application in Polyaniline Thin Film Growth
Abstract
:1. Introduction
2. Materials and Methods
2.1. Experimental Setup
2.2. Intensified Charge-Coupled Device (ICCD)
2.3. Discharge Voltage and Current Waveform Analysis
2.4. Optical Emission Spectroscopy
2.5. Field Emission-Scanning Electron Microscopy
2.6. Stylus Profiler
2.7. Atomic Force Microscopy
2.8. Fourier Transform Infrared Spectroscopy
3. Results
4. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Electrode Configuration | Case I: Vertically Parallel Pin Electrode |
---|---|
Case II: Titled Pin Electrode | |
Case III: Vertically Combined Pin Electrode | |
Precursor liquid solution | Aniline monomer |
Driving power source | AC sinusoidal |
Plasma driving voltage (V p-p) | 8 kV (Fixed) |
Frequency | 30 kHz (Fixed) |
Argon pressure for aniline vapor | 400 sccm (Fixed) |
Argon main gas pressure | 1000 sccm and 1300 sccm (controllable) |
Bluff-body height | 10 mm and 15 mm (controllable) |
Electrode Configuration | Case I | Case II | Case III |
---|---|---|---|
Driving type | AC | AC | AC |
Voltage waveform | Sinusoidal | Sinusoidal | Sinusoidal |
Plasm a driving voltage (V p-p) | 8 kV | 8 kV | 8 kV |
Average power | 0.8 W | 1.5 W | 1.6 W |
Sample Conditions | Case I | Case II | Case III |
---|---|---|---|
Ra | 2.22 nm | 1.03 nm | 0.61 nm |
Rrms | 2.75 nm | 1.31 nm | 0.85 nm |
Wavenumber | Peak Assignment |
---|---|
763 cm−1 | C–H out-of-plane bending |
1313 cm−1 | C–N stretching vibration |
1501 cm−1 | C=C stretching vibrations of the benzenoid rings |
1601 cm−1 | C=C stretching vibrations of quinoid rings |
2844 cm−1 | C–H stretching vibration |
2959 cm−1 | C–H stretching vibration |
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Jung, E.Y.; Park, C.-S.; Jang, H.J.; Iqbal, S.; Hong, T.E.; Shin, B.J.; Choi, M.; Tae, H.-S. Optimization of Atmospheric Pressure Plasma Jet with Single-Pin Electrode Configuration and Its Application in Polyaniline Thin Film Growth. Polymers 2022, 14, 1535. https://doi.org/10.3390/polym14081535
Jung EY, Park C-S, Jang HJ, Iqbal S, Hong TE, Shin BJ, Choi M, Tae H-S. Optimization of Atmospheric Pressure Plasma Jet with Single-Pin Electrode Configuration and Its Application in Polyaniline Thin Film Growth. Polymers. 2022; 14(8):1535. https://doi.org/10.3390/polym14081535
Chicago/Turabian StyleJung, Eun Young, Choon-Sang Park, Hyo Jun Jang, Shahzad Iqbal, Tae Eun Hong, Bhum Jae Shin, Muhan Choi, and Heung-Sik Tae. 2022. "Optimization of Atmospheric Pressure Plasma Jet with Single-Pin Electrode Configuration and Its Application in Polyaniline Thin Film Growth" Polymers 14, no. 8: 1535. https://doi.org/10.3390/polym14081535
APA StyleJung, E. Y., Park, C. -S., Jang, H. J., Iqbal, S., Hong, T. E., Shin, B. J., Choi, M., & Tae, H. -S. (2022). Optimization of Atmospheric Pressure Plasma Jet with Single-Pin Electrode Configuration and Its Application in Polyaniline Thin Film Growth. Polymers, 14(8), 1535. https://doi.org/10.3390/polym14081535