Startseite Performance Analysis of 20 Gbit/s–40 GHz MDM-Ro-FSO Link Incorporating DPSK Modulation Scheme
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Performance Analysis of 20 Gbit/s–40 GHz MDM-Ro-FSO Link Incorporating DPSK Modulation Scheme

  • Amit Grover EMAIL logo und Anu Sheetal
Veröffentlicht/Copyright: 19. Oktober 2019
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Abstract

The congestion in the radio frequency spectrum has posed a serious challenge for mobile service providers. Radio-over-free space optics (Ro-FSO) technology has been considered as a front runner to deal with the problem of spectrum congestion and to provide future generation high-capacity wireless networks. This work proposes designing and numerical analysis of differential phase shift keying (DPSK) modulation-based 20Gbit/s–40 GHz hybrid mode division multiplexing-radio-over-free space optics (MDM-Ro-FSO) link up to 40 km transmission range under clear weather. Quality Factor (Q Factor), log of bit error rate (BER), signal to noise ratio (SNR), and received power are the key metrics used to probe the proposed system performance. The impact of increasing divergence angle and different fog weather conditions on the proposed system performance is also numerically evaluated. Further, the decomposition analysis of different spatial modes at the receiving unit is carried out in this work.

References

1. Kohli AK, Lamba GS. Impact of phase noise on single-tap equalization for fast–OFDM signals under generic linear fading channels. Optik. 2018;169:382–91.10.1016/j.ijleo.2018.05.079Suche in Google Scholar

2. Singh M, Malhotra J. Enhanced performance of 40Gbit/s-80GHz OFDM based radio over FSO transmission link incorporating mode division multiplexing under strong atmospheric turbulence. Optoelectron Adv Mater Rapid. 2019;13:437–47.Suche in Google Scholar

3. Singh M, Malhotra J. Long-reach high-capacity hybrid MDM-OFDM-FSO transmission link under the effect of atmospheric turbulence. Wireless Pers Commun. 2019;107:1549–71.10.1007/s11277-019-06345-7Suche in Google Scholar

4. Singh M, Malhotra J. 2×10 Gbit/s–10 GHz radio over free space optics transmission system incorporating mode division multiplexing of hermite gaussian modes. J Opt Commun. 2019. doi:10.1515/joc-2019-0047.Suche in Google Scholar

5. Singh M, Malhotra J. Performance comparison of high-speed long-reach mode division multiplexing-based radio over free space optics transmission system using different modulation formats under the effect of atmospheric turbulence. Opt Eng. 2019;58:046112.10.1117/1.OE.58.4.046112Suche in Google Scholar

6. Goyal H, Saxena J, Dewra S. Performance evaluation of OWC using different modulation techniques. J Opt Commun. 2016;37. doi:10.1515/joc-2015-0103.Suche in Google Scholar

7. Sharma V, Kaur A. Modeling and simulation of long-reach high speed inter satellite links. Optik. 2014;125:883–6.10.1016/j.ijleo.2013.07.090Suche in Google Scholar

8. Kanno AS, Inagki K, Morohashi I, Sakamoto T, Kuri T, Hosako I, et al. 40 Gb/s W-band (75–110 GHz) 16-QAM radio-over-fiber signal generation and its wireless transmission. Opt Express. 2011;19:B56–B63.10.1364/OE.19.000B56Suche in Google Scholar PubMed

9. Al-Khafiji HM, Aljumid SA, Amphawan A, Fadhil HA, Safar AM. Reducing BER of spectral-amplitude coding optical code-division multiple-access systems by single photodiode detection technique. J Eur Opt Soc Rapid Publ. 2013;8:13022–13021-13024.10.2971/jeos.2013.13022Suche in Google Scholar

10. Naila CB, Wakamori K, Matsumoto M.Transmission analysis of M-ary phase shift keying multiple-subcarrier modulation signals over radio-onfree-space optical channel with aperture averaging. Opt Eng. 2011;50:105006–105009.10.1117/1.3641864Suche in Google Scholar

11. Tang X, Ghassemlooy Z, Rajbhandari S, Popoola WO, Lee CG. Coherent heterodyne multilevel polarization shift keying with spatial diversity in a free-space optical turbulence channel. Lightwave Technol J. 2012;30:2689–95.10.1109/JLT.2012.2204859Suche in Google Scholar

12. Zhou H, Mao S, Agrawal P. Optical power allocation for adaptive WDM transmissions in free space optical networks. Wireless Communications and Networking Conference (WCNC). IEEE, 2014;2677–8210.1109/WCNC.2014.6952831Suche in Google Scholar

13. Amphawan A, Mishrab V, Nisaran K, Nedniyomc B. Realtime holographic backlighting positioning sensor for enhanced power coupling efficiency into selective launches in multimode fiber. J Mod Optic. 2012;59:1745–52.10.1080/09500340.2012.739713Suche in Google Scholar

14. Jung Y, Chen R, Ismaeel R, Brambilla G, Alam SU, Giles IP, et al. Dual mode fused optical fiber couplers suitable for mode division multiplexed transmission. Opt Express. 2013;21:24326–31.10.1364/OE.21.024326Suche in Google Scholar PubMed

15. Amphawan A, Benjaporn N, Nashwan MAS. Selective excitation of LP01 mode in multimode fiber using solid-core photonic crystal fiber. J Mod Optic. 2014;60:1–9.10.1080/09500340.2013.827249Suche in Google Scholar

16. Amphawan A. Binary encoded computer generated holograms for temporal phase shifting. Opt Express. 2011;19:23085–96.10.1364/OE.19.023085Suche in Google Scholar PubMed

17. Chaudhary S, Amphawan A. High speed MDM-Ro-FSO communication system by incorporating AMI scheme. Int J Electron Lett. 2018. doi:10.1080/21681724.2018.1494318.Suche in Google Scholar

18. Chaudhary S, Amphawan A. Selective excitation of LG 00, LG 01, and LG 02 modes by a solid core PCF based mode selector in MDM-Ro-FSO transmission systems. Laser Phys. 2018;28. doi:10.1088/1555-6611/aabd15.Suche in Google Scholar

19. Singh M, Malhotra J. Performance comparison of M-QAM and DQPSK modulation schemes in a 2×20 Gbit/s–40 GHz hybrid MDM–OFDM-based radio over FSO transmission system. Photonic Network Commun. 2019;1–12. doi:10.1007/s11107-019-00861-z.Suche in Google Scholar

20. Singh M, Malhotra J. Performance investigation of high-speed FSO transmission system under the influence of different atmospheric conditions incorporating 3-D orthogonal modulation scheme. Opt Quantum Electron. 2019;51:285.10.1007/s11082-019-1998-2Suche in Google Scholar

21. Gnauck AH, Winzer PJ. Optical phase-shift-keyed transmission. J Lightwave Technol. 2005;23:115–30.10.1109/JLT.2004.840357Suche in Google Scholar

22. Hung W, Chan CK, Chen LK, Tong F. An optical network unit for WDM access networks with downstream DPSK and upstream remodulated OOK data using injection-locked FP laser. IEEE Photonics Technol Lett. 2003;15:1476–8.10.1109/LPT.2003.818055Suche in Google Scholar

23. Ghatak A, Thyagarajan K. An introduction to Fiber Optics. Cambridge: Cambridge University Press; 1998.10.1017/CBO9781139174770Suche in Google Scholar

24. Mourka A, Mazilu M, Wright EM, Dholakia K. Modal characterization using principal component analysis: application to bessel, higher-order Gaussian beams and their superposition. Sci Rep. 2013;3:1422.10.1038/srep01422Suche in Google Scholar PubMed PubMed Central

25. Amphawan A, Obrien D. Modal decomposition of output field from holographic mode field generation in a multimode fiber channel. IEEE Int. Conf. Photon. (ICP). IEEE, Langkawi, 2010:1–5.10.1109/ICP.2010.5604377Suche in Google Scholar

Received: 2019-09-03
Accepted: 2019-09-30
Published Online: 2019-10-19
Published in Print: 2023-10-26

© 2019 Walter de Gruyter GmbH, Berlin/Boston

Artikel in diesem Heft

  1. Frontmatter
  2. Amplifiers
  3. Effect of carrier (hole) temperature on performance of optical amplifiers quantum dot structure
  4. Devices
  5. 1 × 2 power splitter based on photonics crystals fibers
  6. Evolution of Adder and Subtractor Circuit Using Si3N4 Microring Resonator
  7. Fibers
  8. Different Photonic Crystal Fibers Configurations with the Key Solutions for the Optimization of Data Rates Transmission
  9. Networks
  10. Design and implementation of OLT switching function in 40/10G TDM-PON experimental system
  11. A parallel cross-connection recovery scheme for dual link failure in elastic optical networks
  12. A Brief Review on the Methods that Improve Optical Burst Switching Network Performance
  13. MBO-Based Bandwidth Allocation and Traffic Coloring Optimization in PON
  14. HMM-Based Secure Framework for Optical Fog Devices in the Optical Fog/Cloud Network
  15. Attack-Aware Dynamic Upstream Bandwidth Assignment Scheme for Passive Optical Network
  16. Systems
  17. 2 × 10 Gbit/s–10 GHz Radio over Free Space Optics Transmission System Incorporating Mode Division Multiplexing of Hermite Gaussian Modes
  18. Impact of Rayleigh-Distributed PAPR on the Performance of a Pre-Clipped DCO-OFDM System
  19. Suitability of FBG for Gain Flatness of 64 × 10 Gbps DWDM System Using Hybrid (EDFA+YDFA) Optical Amplifier in C + L Band up to 50 GHz (0.4 nm) Channel Spacing
  20. BER Performance Analysis of an Orthogonal FDM Free Space Optical Communication System with Homodyne Optical Receiver over Turbulent Atmospheric Channel
  21. Theory
  22. Numerical Analysis of Soliton Propagation in a Tapered Waveguide
  23. New Optical Codes Based on Construction of Parity Check Matrix of LDPC Codes
  24. Performance Analysis of 20 Gbit/s–40 GHz MDM-Ro-FSO Link Incorporating DPSK Modulation Scheme
Heruntergeladen am 19.9.2025 von https://www.degruyterbrill.com/document/doi/10.1515/joc-2019-0237/html
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