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Simulative study of near field light intensity measurement and two-dimension intensity profile for the guided modes based step/linear/spline index core profile shape with different core segments

  • Nellore Kapileswar , Jutur Naga Vishnu Vardhan , Phani Kumar Polasi , Judy Simon , Aarthi Elaveini Mathiyalakendran EMAIL logo and Saber Ali Mahmoud EMAIL logo
Published/Copyright: January 10, 2025
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Abstract

This paper demonstrated the near field light intensity measurement and two-dimension intensity profile for the guided modes based step/linear/spline index core profile shape with different core segments. The refractive index is designed versus radial position for one fiber, two fibers, and 10 fibers per cable. The fiber is designed with different shape profiles with 5 μm core radius, and the fiber refractive index axis ranges from 1.4 to 1.5. The two-dimension intensity profile, near field light intensity plot and with different shape profiles radial intensity profiles are demonstrated and measured for the guided modes of the fiber at different wavelength windows based on the three different designed fibers. Nonlinear propagation parameter, total power launched in fiber core, effective fiber area, and effective refractive index are studied with different shape profile structures versus the spectral operating wavelength based on the three different designed fiber structures.


Corresponding authors: Aarthi Elaveini Mathiyalakendran, Department of Electronics and Communication Engineering, Faculty of Engineering and Technology, SRM Institute of Science and Technology, Ramapuram, Chennai, India, E-mail: ; and Saber Ali Mahmoud, Optics Institute, Zagazing, Egypt, E-mail:

  1. Research ethics: Not applicable.

  2. Informed consent: Not applicable.

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

  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: None declared.

  7. Data availability: Not applicable.

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Received: 2024-11-19
Accepted: 2024-12-31
Published Online: 2025-01-10

© 2025 Walter de Gruyter GmbH, Berlin/Boston

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