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High-speed integrated optical transceivers for ultra-high modulation data rates in different optical communication applications

  • Ramachandran Thandaiah Prabu EMAIL logo , Manimaraboopathy Maruthu Pandian , Arulanantham Dhandapani , Kavitha Subramaniam , Balaji Sambandam Ramachandran , Thankamony Devakhi Subha and Said Kamel Saber EMAIL logo
Published/Copyright: March 25, 2025
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Abstract

This article has clarified high-speed integrated optical transceivers for ultra-high modulation data rates in different optical communication applications. The total APD and PIN photodiode responsitivity performance signature is indicated in relation to temperature variations for various operating wavelengths. APD/PIN photodiode signal per noise ratio is measured versus the operating spectral wavelength at both room thermal effects and at high thermal effects. Various photodiodes quantum efficiency performance signature are clarified against temperature variations for various operating wavelengths. The total APD and PIN photodiodes sensitivity performance signature is demonstrated versus temperature variations for various operating wavelengths. Various light sources are tested with single mode step index/graded index fiber channel and various light detectors.


Corresponding authors: Ramachandran Thandaiah Prabu, Department of ECE, Saveetha School of Engineering, Saveetha Institute of Medical and Technical Sciences, SIMATS, Saveetha University, Chennai, Tamilnadu, India, E-mail: ; and Said Kamel Saber, Tanta Academy of Technology, Tanta, Egypt, E-mail:

  1. Research ethics: Not applicable.

  2. Informed consent: Not applicable.

  3. Author contributions: Not applicable.

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

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

  6. Research funding: Not applicable.

  7. Data availability: Not applicable.

References

1. Teich, MC, Matsuo, K, Saleh, BEA. Counting distributions and error probabilities for optical receivers incorporating superlattice avalanche photodiodes. IEEE Trans Electron Dev 1986;33:1475–88. https://doi.org/10.1109/t-ed.1986.22697.Search in Google Scholar

2. Laird, JS, Hirao, T, Onoda, S, Ohyama, H, Kamiya, T. Heavy-ion induced single-event transients in high-speed InP-InGaAs avalanche photodiodes. IEEE Trans Nucl Sci 2003;50:2225–32. https://doi.org/10.1109/tns.2003.821585.Search in Google Scholar

3. West, RH. A local view of radiation effects in fiber optics. J Lightwave Technol 1988;6:155–64. https://doi.org/10.1109/50.3983.Search in Google Scholar

4. Sporea, DG, Sporea, RA, Oproiu, C, Vat’a, I. Comparative study of gamma-ray, neutron and electron beam irradiated index-guided laser diodes. Radecs Proceedings 2005;3:1–9.10.1109/RADECS.2005.4365557Search in Google Scholar

5. Uffelen, MV, Jucker, P, Fenaux, P. Radiation resistance of fiber optic components and predictive models for optical fiber systems in nuclear environments. IEEE Trans Nucl Sci 1998;45:1558–65.10.1109/23.685239Search in Google Scholar

6. Kalma, H, Hardwick, WH. Radiation testing of pin photodiodes. IEEE Trans Nucl Sci 1978;25:1483–8. https://doi.org/10.1109/tns.1978.4329558.Search in Google Scholar

7. Leskovar, B. Radiation effects on optical data transmission systems. IEEE Trans Nucl Sci 1989;36:543–51. https://doi.org/10.1109/23.34498.Search in Google Scholar

8. Ohyama, H, Simoen, E, Claeys, C, Takami, Y, Kudou, T, Sunaga, H. Radiation source dependence of degradation and recovery of irradiated in0.53Gag.47as pin photodiodes. IEEE Trans Nucl Sci 1998;98:108–13.10.1109/RADECS.1997.698863Search in Google Scholar

9. Lischka, H, Henschel, H, Lennartz, W, Schmidt, HU. Radiation sensitivity of light emitting diodes (LED), laser diodes (LD) and photodiodes (PD). IEEE Trans Nucl Sci 1992;91:404–8. https://doi.org/10.1109/radecs.1991.213565.Search in Google Scholar

10. Niemela, A, Sipila, H, Ivanov, VI. High-resolution p-i-n CdTe and CdZnTe X-Ray detectors with cooling and rise-time discrimination. IEEE Trans Electron Dev 1996;30:549–53.10.1109/NSSMIC.1995.504321Search in Google Scholar

11. Onoda, S, Hirao, T, Laird, JS, Wakasa, T, Yamakawa, T, Okamoto, T, et al.. Development of monte-carlo modeling for proton induced charge in si pin photodiode. IEEE Trans Nucl Sci 2004;51:2770–5. https://doi.org/10.1109/tns.2004.835110.Search in Google Scholar

12. Shi, L, Nihtianov, SN, Scholze, F, Nanver, LK. Electrical performance stability characterization of high-sensitivity si-based EUV photodiodes in a harsh industrial application. IEEE Trans Nucl Sci 2012;2:3952–7. https://doi.org/10.1109/iecon.2012.6389260.Search in Google Scholar

13. Baccaro, S, Bateman, J, Cavallari, F, Ponte, V, Deiters, K, Denes, P, et al.. Radiation damage effect on avalanche photodiodes. CMS Conf 1998;10:1–7.10.1016/S0168-9002(98)01493-4Search in Google Scholar

14. Su, Z, Liang, X. Computation and analysis on the volt-ampere characteristics of photodiode sensor under the certain conditions. IEEE Int Congr Image Signal Process 2011;7:2593–6. https://doi.org/10.1109/cisp.2011.6100750.Search in Google Scholar

15. Bielecki, Z. Analysis of operation conditions of avalanche photodiodes on signal to noise ratio. Opto-Electron Rev 1997;5:249–56.Search in Google Scholar

16. Nikolic, D, Vasic, A, Fetahovic, I, Stankovic, K, Osmokrovic, P. Photodiode behavior in radiation environment. Appl Math Inf Mech 2011;3:27–34.Search in Google Scholar

17. Wiczer, JJ, Fischer, TA, Dawson, LR, Osbourn, GC, Zipperian, TE, Barnes, CE. Pulsed irradiation of optimized, mbe grown, AlGaAs/GaAs radiation hardened photodiodes. IEEE Trans Nucl Sci 1984;31:1477–82. https://doi.org/10.1109/tns.1984.4333533.Search in Google Scholar

18. Murray, KA, Kennedy, JE, Evoy, BM, Vrain, O, Ryan, D, Ryan, D, et al.. Effects of gamma ray and electron beam irradiation on the mechanical, thermal, structural and physicochemical properties of poly (ether-block-amide) thermoplastic elastomers. J Mech Behav Biomed Mater 2012;6:255–305.Search in Google Scholar

19. Gopalan, A, Thillaigovindan, A, Mohan Patnala, P, Mary Lesley, H, Sundaram, M, Srinivasan, V, et al.. High speed operation efficiency of doped light sources with the silica-doped fiber channel for extended optical fiber system reach. J Opt Commun 2024;45:1–14. https://doi.org/10.1515/joc-2024-0130.Search in Google Scholar

20. Ramkumar, G, Rajasekaran, V, Sivaraman, D, Arumugam, S, Dwaraka Praveena, H, Prathima, S, et al.. Comparative analysis of high index core micro structured optical fibers (HIMSOF) and hollow core band gap fibers (HCBGF) performance efficiency in fiber communication system. J Opt Commun 2024;45:102–15. https://doi.org/10.1515/joc-2024-0085.Search in Google Scholar

21. Wiczer, JJ, Dawson, LR, Osbourn, GC, Barnes, CE. Permanent damage effects in si and AlGaAs/GaAs photodiodes. IEEE Trans Nucl Sci 1982;29:1539–44. https://doi.org/10.1109/tns.1982.4336400.Search in Google Scholar

22. Harris, RD, Farr, WH, Becker, HN. Proton irradiation of InGaAs/InP and InGaAsP/InP geiger-mode avalanche photodiodes. IEEE Trans Nucl Sci 2009;2:396–9. https://doi.org/10.1109/radecs.2009.5994684.Search in Google Scholar

23. Laird, JS, Onoda, S, Hirao, T, Edmonds, L, Ohshima, T. Quenching of impact ionization in heavy ion induced tracks in wide bandwidth si avalanche photodiodes. IEEE Trans Nucl Sci 2007;9:1704–9.10.1109/RADECS.2007.5205467Search in Google Scholar

24. Wegrzecka, I, Wegrzecki, M, Grynglas, M, Bar, J, Uszynski, A, Grodecki, R, et al.. Design and properties of silicon avalanche photodiodes. Opto-Electron Rev 2004;12:95–104.Search in Google Scholar

25. Gopalan, A, Arulmozhi, AK, Pandian, MM, Mohanadoss, P, Dorairajan, N, Balaji, M, et al.. Performance parameters estimation of high speed Silicon/Germanium/InGaAsP avalanche photodiodes wide bandwidth capability in ultra high speed optical communication system. J Opt Commun 2024;45:33–45. https://doi.org/10.1515/joc-2024-0099.Search in Google Scholar

26. Ramkumar, G, Shahila, FD, Lingaraj, V, Chandran, P, Chidambaram, V, Arumugam, P, et al.. Total losses and dispersion effects management and upgrading fiber reach in ultra-high optical transmission system based on hybrid amplification system. J Opt Commun 2024;45:133–46. https://doi.org/10.1515/joc-2024-0074.Search in Google Scholar

Received: 2025-01-28
Accepted: 2025-03-01
Published Online: 2025-03-25

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