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High thermal stability and high-performance efficiency capability of light sources–based rate equation models in optical fiber transmission systems

  • Ramachandran Thandaiah Prabu EMAIL logo , Arumugam Krishnan Arulmozhi , Sreeja Vijay , Thulasi Bai Vijayan , Deepa Sivaraman , Merline Arulraj and Alaa Hosny Mahrous EMAIL logo
Published/Copyright: June 7, 2024
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Abstract

This paper clarified the high thermal stability and high-performance efficiency capability of silicon light sources–based rate equation models in the optical fiber transmission systems. The laser diode and light emitting diode output power variations are measured with input injection current under various ambient temperature effects. The light source differential quantum efficiency is demonstrated for both LED and laser diode with different injection input current and various temperature variations. The LED/laser diode light source external efficiency is clarified with different injection input current and various temperature variations. The LED/laser diode light source total efficiency is measured with different injection input current and various temperature variations. As well as the laser diode and light emitting diode, threshold current variations are demonstrated clearly with input injection current under room temperature and various spectral thermal effects. The laser diode and light emitting diode power dissipation variations are measured with input injection current under room temperature and various spectral thermal effects.


Corresponding authors: Ramachandran Thandaiah Prabu, Department of ECE, Saveetha School of Engineering, Saveetha Institute of Medical and Technical Sciences, SIMATS, Saveetha University, Chennai, Tamil Nadu, India, E-mail: ; and Alaa Hosny Mahrous, Light Institute of Engineering, Giza, Egypt, E-mail:

  1. Research ethics: Not applicable.

  2. Author contributions: The authors have accepted responsibility for the entire content of this manuscript and approved its submission.

  3. Competing interests: The authors state no competing interests.

  4. Research funding: Not Applicable.

  5. Data availability: Not Applicable.

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Received: 2024-03-25
Accepted: 2024-05-18
Published Online: 2024-06-07
Published in Print: 2025-07-28

© 2024 Walter de Gruyter GmbH, Berlin/Boston

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