Home Capacity enhancement of WDM visible light communication system employing 3-SOPs/channel/LD color
Article
Licensed
Unlicensed Requires Authentication

Capacity enhancement of WDM visible light communication system employing 3-SOPs/channel/LD color

  • Hunny Pahuja , Shippu Sachdeva and Manoj Sindhwani EMAIL logo
Published/Copyright: November 28, 2022
Become an author with De Gruyter Brill

Abstract

Nowadays, polarization division multiplexing (PDM) employing different states of polarizations (SOP) is a prominent candidate to offer high capacity and improved performance. However, the incorporation of PDM in indoor wireless optical communication (WOC) systems is limited to horizontal and vertical SOPs only. Therefore, in this research article, a cost-effective and high capacity 90 Gbps non-return to zero (NRZ) line coding based 18 channels VLC system is presented by incorporating red–green–blue laser diodes (RGB LDs). Performance investigations of different SOPs such as SOP 0°, SOP 45°, and SOP 90° are carried out at diverse VLC link distances in terms of log BER and Q factor. Results revealed that the proposed VLC system can successfully cover the 6 m distance and red LD together with SOP0 is found to be the highest performing.

Keywords: RF; RGB; SOP; VLC; WDM

Corresponding author: Manoj Sindhwani, School of Electronics and Electrical Engineering, Lovely Professional University, Phagwara, India, E-mail:

  1. Author contribution: All the authors have accepted responsibility for the entire content of this submitted manuscript and approved submission.

  2. Research funding: None declared.

  3. Conflict of interest statement: The authors declare no conflicts of interest regarding this article.

References

1. Chi, N, Zhou, Y, Wei, Y, Hu, F. Visible light communication in 6G: advances, challenges, and prospects. IEEE Veh Technol Mag 2020;15:93–102. https://doi.org/10.1109/MVT.2020.3017153.Search in Google Scholar

2. Ariyanti, S, Suryanegara, M. Visible light communication (VLC) for 6G technology: the potency and research challenges. In: 2020 Fourth world conference on smart trends in systems, security and sustainability (WorldS4); 2020:490–3 pp.10.1109/WorldS450073.2020.9210383Search in Google Scholar

3. Niarchou, E, Boucouvalas, AC, Ghassemlooy, Z, Alves, LN, Zvanovec, S. Visible light communications for 6G wireless networks. In: 2021 Third south american colloquium on visible light communications (SACVLC); 2021:1–6 pp.10.1109/SACVLC53127.2021.9652231Search in Google Scholar

4. Soderi, S, De Nicola, R. 6G networks physical layer security using RGB visible light communications. IEEE Access 2022;10:5482–96. https://doi.org/10.1109/ACCESS.2021.3139456.Search in Google Scholar

5. Gupta, A, Fernando, X. Exploring secure visible light communication in next-generation (6G) internet-of-things. In: 2021 International wireless communications and mobile computing (IWCMC);2021:2090–7 pp.10.1109/IWCMC51323.2021.9498740Search in Google Scholar

6. Matheus, LEM, Vieira, AB, Vieira, LFM, Vieira, MAM, Gnawali, O. Visible light communication: concepts, applications and challenges. IEEE Commun Surv Tutorials 2019;21:3204–37. https://doi.org/10.1109/COMST.2019.2913348.Search in Google Scholar

7. Priyadharshini, CS, Rajeswari, A, Sharmila, P, Gayathri, M, Randhisha, K, Yazhini, MC. Design of visible light communication system using ask modulation. In: 2021 International conference on computing, communication, and intelligent systems (ICCCIS); 2021:894–9 pp.10.1109/ICCCIS51004.2021.9397075Search in Google Scholar

8. Jia, Y-p, Ye, W-l, Tian, C-w, Quan, X-y, Wang, J-q, Song, Z-w, et al.. Numerical analysis on an OOK-NRZ visible light communication system based on a single white LED. Optoelectron Lett 2011;7:376. https://doi.org/10.1007/s11801-011-1050-7.Search in Google Scholar

9. Yeh, CH, Chow, CW, Gu, CS, Guo, BS, Chang, YJ, Weng, JH, et al.. 400 Mbit/s OOK green-LED visible light communication with low illumination. Opt Quant Electron 2018;50:1–5. https://doi.org/10.1007/s11082-018-1672-0.Search in Google Scholar

10. Rahman, MT, Parthiban, R, Modeling and analysis of multi-channel gigabit class CWDM-VLC system. Opt Commun 2020;460:1–6. https://doi.org/10.1016/j.optcom.2019.125141.Search in Google Scholar

11. Retamal, JR, Oubei, HM, Janjua, B, Chi, YC, Wang, HY, Tsai, CT, et al.. 4-Gbit/s visible light communication link based on 16-QAM OFDM transmission over remote phosphor-film converted white light by using blue laser diode. Opt Express 2015;23:33656–66. https://doi.org/10.1364/OE.23.033656.Search in Google Scholar PubMed

12. Wei, L-Y, Hsu, C-W, Chow, C-W, Yeh, C-H. 40-Gbit/s visible light communication using polarization-multiplexed R/G/B laser diodes with 2-m free-space transmission. In: 2019 Optical fiber communications conference and exhibition (OFC); 2019:1–3 pp.10.1364/OFC.2019.M3I.3Search in Google Scholar

13. Peng, CX. A cost-efficient RGB laser-based visible light communication system by incorporating hybrid wavelength and polarization division multiplexing schemes. Front Physiol 2021;9:1–6.10.3389/fphy.2021.731405Search in Google Scholar

14. Kaur, H, Gill, NS. Ultra high-speed VLC system using polarization division multiplexed QPSK, DSP, and matched filters. Opt Quant Electron 2022;54:636–43. https://doi.org/10.1007/s11082-022-03882-7.Search in Google Scholar

15. Minh, HL, O’Brien, D, Faulkner, G, Zeng, L, Lee, K, Jung, D, et al.. 100-Mb/s NRZ visible light communications using a postequalized white LED. IEEE Photon Technol Lett 2009;21:1063–5. https://doi.org/10.1109/lpt.2009.2022413.Search in Google Scholar

16. Wei, Z, Chen, C, Wang, L, Zhang, L, Liu, X, Pepe, A, et al.. Gbps real-time NRZ-OOK visible light communication system based on a packaged single layer quantum dot blue micro-LED: first fabrication and demonstration. In: Asia communications and photonics conference (ACPC), OSA Technical Digest, Optica Publishing Group; 2019:M4D.2 p.10.1364/OFC.2020.M3I.7Search in Google Scholar

Received: 2022-10-22
Accepted: 2022-11-07
Published Online: 2022-11-28
Published in Print: 2025-01-29

© 2022 Walter de Gruyter GmbH, Berlin/Boston

Articles in the same Issue

  1. Frontmatter
  2. Amplifiers
  3. Design and construction of passively pulse compressor using PM–Mach–Zehnder interferometers
  4. Performance analysis of 2λ × 160 Gbps optical single sideband (OSSB) generation in polarization division multiplexed (PDM) QPSK based satellite wireless optical systems (SWOS)
  5. Detectors
  6. Analytical design of fiber-optic FM/PM demodulator
  7. Devices
  8. Performance analysis of optical spectral amplitude CDMA system unipolar codes with double weight construction design
  9. Fibers
  10. Delineation of profoundly birefringent nonlinear photonic crystal fiber in terahertz frequency regime
  11. Performance enhancement of 8 channel SCM–WDM based RoF link using different type of transmission fibers along with different type of channel spacing
  12. Networks
  13. Flower shaped gap tuned plasmonic nano-antenna for optical wireless communication
  14. Radial distribution of pump and signal intensities in step index EDFA for LP11 mode in Kerr nonlinear condition
  15. Next-generation WDM-PON optimized architecture for FTTH network with maximal resources for high throughput
  16. Equilibrium points, linear stability, and bifurcation analysis on the dynamics of a quantum dot light emitting diode system
  17. Receiver
  18. Capacity enhancement of WDM visible light communication system employing 3-SOPs/channel/LD color
  19. Systems
  20. A 4 × 210 Gbps high-speed optical wireless system in medium earth orbit (MEO) using matched filters and digital signal processing
  21. Investigation of hybrid LD/LED system for UWOC link with depth variations
  22. Research on novel variable air-hole photonic crystal fiber
  23. Comparison of solar cell and photodiode performance for underwater visible light communications system with RF transmission by various techniques
  24. Performance of hybrid LD/LED system for UWOC link in Baltic Sea
  25. Performance investigation of various modulation techniques in coherent optical orthogonal frequency division multiplexing (CO-OFDM) system
  26. Implementation of a polarization-encoded quantum CNOT gate
  27. Transmission of RF frequency by MIMO-LED system for underwater turbulent channel link
  28. Design of an ultra-compact photonic crystal based all optical XOR and NOT logic gates
  29. Theory
  30. Design and analysis of series and parallel circuits based on plasmonic waveguides for high-performance computing devices
  31. Performance evaluation of PDM-256-QAM inter-satellite optical wireless system (IsOWC) using DSP and different wavelength windows
  32. UOWC performance based on GMSK modulation
Downloaded on 22.9.2025 from https://www.degruyterbrill.com/document/doi/10.1515/joc-2022-0270/html?lang=en
Scroll to top button