Experimental–Simulation Analysis of a Radiation Tolerant Erbium-Doped Fiber Amplifier for Space Applications

Author:

Facchini Alberto12,Morana Adriana1ORCID,Mescia Luciano2ORCID,Campanella Cosimo1,Shuvo Md Mizan Kabir1,Robin Thierry3,Marin Emmanuel1,Ouerdane Youcef1ORCID,Boukenter Aziz1ORCID,Girard Sylvain14

Affiliation:

1. Laboratoire Hubert Curien, UMR CNRS 5516, Université Jean Monnet, 42000 Saint-Etienne, France

2. Department of Electrical and Information Engineering, Politecnico di Bari, Via E. Orabona 4, 70125 Bari, Italy

3. Exail, rue Paul Sabatier, 22300 Lannion, France

4. Institut Universitaire de France (IUF), Ministère de l’Enseignement Supérieur et de la Recherche, sis 1 rue Descartes, 75005 Paris, France

Abstract

Research on optical amplifiers has highlighted how ionizing radiation negatively impacts the performance of erbium-doped fiber amplifiers (EDFAs), through the degradation of their gain. The amplitudes and kinetics of this degradation are mainly explained by the radiation-induced attenuation (RIA) phenomenon at the pump and signal wavelengths. In this work, the gain degradation of a radiation tolerant EDFA (exploiting a cerium-co-doped active optical fiber) induced by ionizing radiation up to 3 kGy (SiO2), at two dose rates, 0.28 Gy/s and 0.093 Gy/s, is studied through an experimental/simulation approach. Using a home-made simulation code based on the rate and power propagation equations and including the RIA effects, the radiation-dependent performance of EDFAs were estimated. The variations in the spectroscopic parameters caused by irradiation were also characterized, but our results show that they give rise to EDFA gain degradation of about 1%. To overcome the issue of overestimating the RIA during the radiation tests on the sole active rare-earth-doped fiber, a new RIA experimental setup is introduced allowing us to better consider the photobleaching mechanisms related to the pumping at 980 nm. A good agreement between experimental and simulated gain degradation dose dependences was obtained for two different irradiation conditions, thus also validating the simulation code for harsh environments applications.

Funder

French National Research Agency

Publisher

MDPI AG

Subject

Fluid Flow and Transfer Processes,Computer Science Applications,Process Chemistry and Technology,General Engineering,Instrumentation,General Materials Science

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