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STUDY OF GROWTH EVALUATION OF NANOSTRUCTURED CARBON NITRIDE THIN LAYERS IN NITROGEN-METHANE GAS MIXTURE RADIOFREQUENCY PLASMA

https://doi.org/10.55452/1998-6688-2026-23-3-448-460

Abstract

Amorphous carbon nitride (a-Cx Ny ) thin films were synthesized by plasma-enhanced chemical vapor deposition (PECVD) in a nitrogen–methane radiofrequency (RF) discharge plasma (13.56 MHz) using pulsed plasma modulation. The evolution of the DC self-bias voltage (Vdc) was monitored as an in situ diagnostic parameter to track nanoparticle nucleation, growth, and agglomeration during synthesis. It was found that the absolute value of Vdc decreases monotonically following plasma ignition, and that the onset of nanoparticle agglomeration can be reliably identified from a characteristic change in the Vdc(t) curve, consistent with the three-stage model of dustparticle formation in low-temperature plasma. The agglomeration onset time (tagl) was shown to depend strongly on methane flow rate, working pressure, and RF power: at baseline conditions (0.86 mbar, 20 W), increasing the CH4 flow rate from 2 to 7 sccm reduced tagl from 4.4 s to 200 ms, while pressure and power exhibited dominant and nonmonotonic effects, respectively. These findings guided the selection of plasma-on pulse durations for controlled film growth. Samples deposited under pulsed modulation were characterized by SEM, EDS, FTIR, and XRD, confirming the formation of continuous, nonstoichiometric carbon nitride films dominated by C–N and C=N bonding. The results demonstrate that self-bias voltage monitoring is an effective, accessible method for in situ control of a-Cx Ny nanoparticle growth kinetics and for tailoring film thickness, morphology, and chemical structure via pulsed RF plasma parameters.

About the Authors

D. G. Batryshev
Kazakh-British Technical University
Kazakhstan

PhD, Associate Professor

Almaty



A. R. Abdirakhmanov
Kazakh-British Technical University; Mons University
Kazakhstan

PhD, Postdoc

Almaty, Mons, 7000, Belgium



L. Boufendi
Al-Farabi Kazakh National University
Kazakhstan

PhD, Professor

Almaty



S. A. Orazbayev
Kazakh-British Technical University; Al-Farabi Kazakh National University
Kazakhstan

PhD, Associate Professor

Almaty



A. Baikaliyev
Kazakh-British Technical University; Al-Farabi Kazakh National University
Kazakhstan

PhD student, Junior researcher

Almaty



T. S. Ramazanov
Kazakh-British Technical University; Al-Farabi Kazakh National University
Kazakhstan

Doctor of Physical and Mathematical Sciences, Professor

Almaty



References

1. Aono M., Kikuchi S., Kitazawa N., Watanabe Y. Change in surface states of amorphous carbon nitride films after exposure to oxygen plasma. Materials Science Forum. 638–642, 818–823 (2010). https://doi.org/10.4028/www.scientific.net/MSF.638-642.818

2. Mohamed S.H., El-Hossary F.M., Gamal G.A., Kahlid M.M. Optical properties of plasma deposited amorphous carbon nitride films on polymer substrates. Physica B: Physica B. 405, 254–257 (2010). https://doi.org/10.1016/j.physb.2009.08.069

3. Xu Q., Zheng Y., Wang S., Fu Q., Guo X., Li Y., Ren J., Cao Z., Li R., Zhao L., Huang Y. Plasma synthesis of K-doped amorphous carbon nitride with passivated trap states for enhanced photocatalytic H₂O₂ production. Journal of Alloys and Compounds. 947, 169663 (2023). https://doi.org/10.1016/j.jallcom.2023.169663.

4. Bouchoule A., Boufendi L. Particle nucleation and growth in a low-pressure argon-silane discharge. Journal Plasma Sources Science and Technology. 3, 262, (1994). https://doi.org/10.1088/0963-0252/3/3/004.

5. Orazbayev S.A., Henault M., et all. Influence of Gas Temperature on Nucleation and Growth of Dust Nanoparticles in RF Plasma. IEEE Transactions on Plasma Science. 47 (7), 3069–3073 (2019). https://doi.org/10.1109/TPS.2019.2912805.

6. Guo, X., Duan, J., Li, C., Zhang, Z. & Wang, W. Highly efficient Z-scheme gC3N4/ZnO photocatalysts constructed by co-melting-recrystallizing mixed precursors for wastewater treatment. J. Mater. Sci. 55, 2018– 2031 (2020). https://doi.org/10.1007/s10853-019-04097-0

7. Yang, X., Tang, B., Wu, T. & Cao, X. g-C3N4/TiO2 composite photocatalyst and its application to asphalt for NO removal. J. Mater. Civ. Eng. 31, 04019141 (2019). https://doi.org/10.1061/%28ASCE%29MT.1943-5533.0002763

8. Li, X. et al. Synergistic effect of efficient adsorption g-C3N4/ZnO composite for photocatalytic property. J. Phys. Chem. Solids 75, 441–446 (2014). https://doi.org/10.1016/j.jpcs.2013.12.001

9. Ghafuri, H., Tajik, Z., Ghanbari, N. et al. Preparation and characterization of graphitic carbon nitridesupported l-arginine as a highly efficient and recyclable catalyst for the one-pot synthesis of condensation reactions. Sci Rep 11, 19792 (2021). https://doi.org/10.1038/s41598-021-97360-x

10. Rashidizadeh, A., Ghafuri, H., Esmaili Zand, H. R. & Goodarzi, N. Graphitic carbon nitride nanosheets covalently functionalized with biocompatible vitamin B1: synthesis, characterization, and its superior performance for synthesis of quinoxalines. ACS Omega 4(7), 12544–12554 (2019). https://doi.org/10.1021/acsomega.9b01635

11. Saravanan V., Lakshmanan P., Ramalingan C., Appl Organomet Chem 2023, 37(10), e7215. https:// doi.org/10.1002/aoc.7215

12. Shcherban N.D., et. all. Melamine-derived graphitic carbon nitride as a new effective metal-free catalyst for Knoevenagel condensation of benzaldehyde with ethylcyanoacetate. Catal. Sci. Technol. (2018) 8 (11): 2928–2937. https://doi.org/10.1039/c8cy00253c

13. Thomas A., Fischer A., et. all. Graphitic carbon nitride materials: variation of structure and morphology and their use as metal-free catalysts. J. Mater. Chem., 2008, 18, 4893–4908. https://doi.org/10.1039/b800274f

14. Elamin, M.R.; Elamin, N.Y.; Ibrahim, T.G.; et. all. Facile Synthesis of β-C3N4 and Its Novel MnTeO3 Nanohybrids for Remediating Water Contaminated by Pharmaceuticals. Processes 2025, 13, 2357. https://doi.org/10.3390/pr13082357

15. Drueck U. and Kutoglu A. Experimental difference densities of hexacyanobenzene at 120 k.refinement of electron density distributions with charge-cloud models. Zeitschrift fuer Kristallographie (1979-2010), 166:233–244, 1984. https://doi.org/10.1524/zkri.1984.166.3-4.233

16. Parkes A.S. and Hughes R.E. The crystal structure of cyanogen. Acta Crystallographica. (1963). 16, 734–736. https://doi.org/10.1107/S0365110X63001924

17. A. Salamat, K. Woodhead, P.F. McMillan, R. Quesada Cabrera, A. Rahman, D. Adriaens, and F. Cora. Tetrahedrally bonded dense c2 n3 h with a defective wurtzite structure: x-ray diffraction and raman scattering results at high pressure and ambient conditions. Phys. Rev. B (2009), 80, 104106. https://doi.org/10.1103/PhysRevB.80.104106

18. Boufendi L., Gaudin J., Huet S., Viera G., Dudemaine M. Detection of particles of less than 5 nm in diameter formed in an argon–silane PECVD plasma. Applied Physics Letters. 79, 4301 (2001). https://doi.org/10.1063/1.1425431


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For citations:


Batryshev D.G., Abdirakhmanov A.R., Boufendi L., Orazbayev S.A., Baikaliyev A., Ramazanov T.S. STUDY OF GROWTH EVALUATION OF NANOSTRUCTURED CARBON NITRIDE THIN LAYERS IN NITROGEN-METHANE GAS MIXTURE RADIOFREQUENCY PLASMA. Herald of the Kazakh-British Technical University. 2026;23(3):448-460. (In Russ.) https://doi.org/10.55452/1998-6688-2026-23-3-448-460

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ISSN 1998-6688 (Print)
ISSN 2959-8109 (Online)