Home Modified modelling of 16-channels WDM-RoF system in the presence of OPC and FBG for 5g applications
Article
Licensed
Unlicensed Requires Authentication

Modified modelling of 16-channels WDM-RoF system in the presence of OPC and FBG for 5g applications

  • Pravesh Kumari ORCID logo EMAIL logo , Vinod Kumar and Sandeep Arya
Published/Copyright: September 26, 2025
Become an author with De Gruyter Brill

Abstract

This paper introduces an innovative approach that employs wavelength division multiplexing-radio-over-fiber (WDM-RoF) technology to facilitate high-speed data transmission across an extended distance of 340 km. With the rapid growth of next-generation wireless networks, there is an increasing demand for cost-effective and energy-efficient optical communication systems that can deliver higher data rates over long-haul links without compromising signal integrity or overall network reliability. To address this requirement, the proposed model demonstrates a 16-channel WDM-RoF system that integrates optical phase conjugation (OPC) and fiber Bragg grating (FBG) for enhanced performance. The use of OPC effectively mitigates nonlinear distortions accumulated during fiber transmission, while the inclusion of FBG provides precise wavelength filtering and stabilization, thereby improving spectral efficiency, minimizing crosstalk, and reducing interference between densely packed channels. The system successfully achieves a transmission rate of 12 Gbps per channel at a carrier frequency of 250 GHz, maintaining a typical bit error rate (BER) of 10−9 across the 340 km span. Such performance validates the robustness and scalability of the proposed configuration for long-distance, high-capacity optical communication. The main objective of this work is to enable faster and more reliable data transmission using a single fiber optic cable, making it a promising and practical solution for emerging 5G as well as future 6G wireless communication infrastructures.


Corresponding author: Pravesh Kumari, Department of Electrical and Electronics Engineering, Guru Jambheshwar University of Science and Technology, Hisar, Haryana, India, E-mail:

Acknowledgments

The authors would like to thank Guru Jambheshwar University of Science and Technology, Hisar, Haryana, India, for providing the necessary facilities and support during this research.

  1. Research ethics: Not applicable.

  2. Informed consent: Not applicable.

  3. Author contributions: All authors have read and approved the final manuscript and accept full responsibility for its content and submission.

  4. Use of Large Language Models, AI and Machine Learning Tools: None declared.

  5. Conflict of interest: The authors declare no conflict of interest.

  6. Research funding: None declared.

  7. Data availability: The data supporting the findings of this study are available from the corresponding author upon reasonable request.

References

1. Sasono, SHW, Sri, K. Fiber optic network performance analysis with fiber to the home (FTTH) architecture. J Appl Inf Commun Technol 2023;8:164. https://doi.org/10.32497/jaict.v8i1.4303.Search in Google Scholar

2. Gerd, EK. A review of WDM technology and applications. Opt Fiber Technol 1999;5:3–39. https://doi.org/10.1006/ofte.1998.0275.Search in Google Scholar

3. Ahmed, BA, Aghzout, O, Mounia, C, Chaoui, F, Naghar, A. Transmission performance analysis of WDM radio over fiber technology for next generation long-haul optical networks. Int J Optics. 2019;2019:1–9.10.1155/2019/5087624Search in Google Scholar

4. Younis, MA, Essa, EI. Radio over fiber (RoF) techniques: a survey. In: International congress on human-computer interaction, optimization and robotic applications. 2022:1–10.10.1109/HORA55278.2022.9800061Search in Google Scholar

5. Kumar, S, Sharma, D, Payal, SR. Performance analysis of radio over fiber link using MZM external modulator. In: First international conference on sustainable technologies for computational intelligence 2020:229–40.10.1007/978-981-15-0029-9_18Search in Google Scholar

6. Garg, D, Nain, A. Next generation optical wireless communication: a comprehensive review. J Opt Comm 2021;44:s1535–50. https://doi.org/10.1515/joc-2020-0254.Search in Google Scholar

7. Ali, AH, Alhamdane, HJ, Haseen, BS. Design analysis and performance evaluation of the WDM integration with CO-OFDM system for radio over fiber system. Indonesian J Elect Eng Comput Sci. 2019;15:870–78.10.11591/ijeecs.v15.i2.pp870-878Search in Google Scholar

8. Kumar, S, Sharma, S, Dahiya, S. WDM-based 160 Gbps radio over fiber system with the application of dispersion compensation fiber and fiber Bragg grating. Front Phys 2021;9:691387. https://doi.org/10.3389/fphy.2021.691387.Search in Google Scholar

9. Jain, D, Iyer, B. Design and analysis of high-speed four-channel WDM radio over fiber system for millimeter-wave applications. Int. J Syst Assur Eng Manage 2021;14:746–58. https://doi.org/10.1007/s13198-020-01051-1.Search in Google Scholar

10. Garg, D, Nain, A. An efficient 110 × 8 GHz WDM RoF system design for 5G and advance wireless networks. Opt Quant Electron 2022;54:342. https://doi.org/10.1007/s11082-022-03726-4.Search in Google Scholar

11. Dahiya, S, Balhara, A. Performance analysis of millimeter wave-based radio over fiber system for next generation networks. J Opt 2023;53:2174–82. https://doi.org/10.1007/s12596-023-01472-8.Search in Google Scholar

12. Mahad, FDB, Supa’at, ASBM. EDFA gain optimization for WDM system. ELEKTRIKA 2009;11:34–7.Search in Google Scholar

13. Zhang, W, An, S, An, J, Bu, X, He, ZS. An MPSK millimeter-wave point-to-point link with radio over fiber synchronous baseband receiver. J Lightw Technol. 2021; 481–9, https://doi.org/10.1109/jlt.2021.3110374.Search in Google Scholar

14. Garg, D, Nain, A. Analysis and mitigation of photodiode non-linearity under the influence of optical modulator in multitone RoF link. J Opt 2022;51:482–90. https://doi.org/10.1007/s12596-021-00794-9.Search in Google Scholar

15. Saleh, MA, Abass, AK, Ali, MH. Enhancing performance of wdmrofso communication system utilizing dual channel technique for 5g applications. Opt Quant Electron 2022;54:497. https://doi.org/10.1007/s11082-022-03857-8.Search in Google Scholar PubMed PubMed Central

16. Ismail, MM, Othman, MA, Zakaria, Z, Misran, MH, Said, MAM, Suleman, HA, et al.. EDFA-WDM optical network design system. Procedia Eng 2013;53:294–302. https://doi.org/10.1016/j.proeng.2013.02.039.Search in Google Scholar

17. Gogayan, K, Arya, S. Design of 10.24 Tb/s DWDM system using NRZ modulation format with narrow channel spacing. In: Proceeding of international conference on intelligent communication, control and devices 2017:227–3410.1007/978-981-10-1708-7_26Search in Google Scholar

18. Sliti, M. 16 channels WDM radio over fiber system with DCF and FBG compensators. In: 27th Asia Pacific Conference on Communications 2022:54–9.10.1109/APCC55198.2022.9943747Search in Google Scholar

19. Gharat, A, Nawale, P, Waje, P, Borse, B, Patel, D. Performance analysis of CFBG and DCF based on dispersion compensation. In: IEEE International Students’ Conference on Electrical, Electronics and Computer Science 2020:1–5.10.1109/SCEECS48394.2020.170Search in Google Scholar

20. Nain, A, Tanwar, S. Simulative investigation of WDM RoFSO networks including the effect of channel spacing. Int J Sci Adv Res Tech. 2017;3:463–6.Search in Google Scholar

21. Singh, K, Arya, S. Estimation of signal-to-cross talk ratio of stimulated-Raman-Scattering-Induced cross talk in wavelength-division-multiplexing-based radio-over-fiber links. J Opt Commun 2021;42:177–82. https://doi.org/10.1515/joc-2018-0039.Search in Google Scholar

22. Singh, K, Mittal, D, Priyamvada. Analysis of BER for optical transmission link using commercial fibers with and without dispersion compensation. IOP Conf Ser Mater Sci Eng. 2021;1033: 012002, https://doi.org/10.1088/1757-899x/1033/1/012002.Search in Google Scholar

23. Kumari, P, Kumar, V, Arya, S. Design and performance analysis of 32-channels WDM-RoF system. Indian J Pure Appl Phys 2025;63:612–16.Search in Google Scholar

24. Nain, A, Kumar, S, Singla, S. Performance estimation of WDM radio-over-fiber links under the influence of SRS induced crosstalk. In: International conference on intelligent communication, control and devices. Springer; 2016:279–84.10.1007/978-981-10-1708-7_32Search in Google Scholar

25. Suresh, K, Deepak, S, Nain, A. Evaluation of sub carrier multiplexing based RoF system against non-linear distortions using different modulation techniques. Int. J. Adv. Res. Comput. Sci. Softw. Eng 2017:7:454–61.10.23956/ijarcsse/V7I6/0191Search in Google Scholar

26. Kanno, A. Radio over fiber: convergence between radio and optical systems. In: Asia communication and photonics conference international conference on information photonics and optical communications 2024:1–4.10.1109/ACP/IPOC63121.2024.10810131Search in Google Scholar

Received: 2025-07-08
Accepted: 2025-08-18
Published Online: 2025-09-26

© 2025 Walter de Gruyter GmbH, Berlin/Boston

Downloaded on 3.10.2025 from https://www.degruyterbrill.com/document/doi/10.1515/joc-2025-0274/html
Scroll to top button