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Relative intensity noise management and thermal/shot noise control for high speed ultra high bandwidth fiber reach transmission performance

  • Ramachandran Thandaiah Prabu EMAIL logo , Soman Shibu , Annalakshmi Thillaigovindan , Gopinathan Charulatha , Nune Divya , Sundararaju Vijayakumar and Hazem Hazem Ali Emam EMAIL logo
Published/Copyright: July 30, 2024
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Abstract

This work has clarified the relative intensity noise management and thermal/shot noise control for high speed ultra high bandwidth fiber reach transmission performance. Total link losses variations are clarified against ambient temperature and relative refractive index difference variations at 1,550 nm wavelength, 20 km fiber link length, and 45 % fluoride dopant ratio inside the fiber material cable. Besides the total link losses variations are demonstrated versus fiber link length and relative refractive index difference variations at 1,550 nm wavelength, room temperature, and 45 % fluoride dopant ratio inside the fiber material cable. Required optical signal per noise ratio (OSNR), electronic signal to noise ratio (SNR), and optimum gain variations are measured and analyzed versus the fiber link length and relative refractive index difference variations at 1,550 nm wavelength, room temperature, and 45 % fluoride dopant ratio inside the fiber material cable.


Corresponding authors: Ramachandran Thandaiah Prabu, Department of ECE, Saveetha School of Engineering, Saveetha Institute of Medical and Technical Sciences, SIMATS, Saveetha University, Chennai, 602105, Tamilnadu, India, E-mail: ; and Hazem Hazem Ali Emam, 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 conflict of interest.

  4. Research funding: Not applicable.

  5. Data availability: Not applicable.

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Received: 2024-05-11
Accepted: 2024-07-07
Published Online: 2024-07-30
Published in Print: 2025-07-28

© 2024 Walter de Gruyter GmbH, Berlin/Boston

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