Numerical Study of Efficient Tm-Doped Zinc-Tellurite Fiber Lasers at 2300 nm

Author:

Anashkina Elena1ORCID,Andrianov Alexey1

Affiliation:

1. A.V. Gaponov-Grekhov Institute of Applied Physics of the Russian Academy of Sciences, 46 Ulyanov Street, 603950 Nizhny Novgorod, Russia

Abstract

Fiber laser sources operating near 2300 nm in the atmospheric transparency window are interesting for different applications, such as remote sensing, lidars, and others. The use of Tm-doped fiber lasers based on tellurite fibers is highly promising. We propose and theoretically study a highly efficient diode-pumped Tm-doped zinc-tellurite fiber laser operating at two cascade radiative transitions at 1960 nm and 2300 nm, with additional energy transfer between these laser waves due to the Raman interaction. We demonstrate numerically that a dramatic increase in the slope efficiency up to 57% for the laser wave at 2300 nm, exceeding the Stokes limit by 22% relative to the pump at 793 nm, can be obtained with optimized parameters thanks to Raman energy transfer from the laser wave at 1960 nm to the wave at 2300 nm.

Funder

Ministry of Science and Higher Education of the Russian Federation

Publisher

MDPI AG

Subject

Mechanics of Materials,Biomaterials,Civil and Structural Engineering,Ceramics and Composites

Reference30 articles.

1. Recent developments in mid-infrared fiber lasers: Status and challenges;Wang;Opt. Laser Technol.,2020

2. Recent development of flat supercontinuum generation in specialty optical fibers;Liu;Opto-Electron. Adv.,2019

3. Shot-to-shot performance analysis of an all-fiber supercontinuum source pumped at 2000 nm;Lindberg;J. Opt. Soc. Am. B,2018

4. Coherent Supercontinuum Generation in Step-Index Heavily Ge-Doped Silica Fibers with All Normal Dispersion;Chen;IEEE Photonics J.,2022

5. Zhluktova, I.V., Kamynin, V.A., Korobko, D.A., Abramov, A.S., Fotiadi, A.A., Sysoliatin, A.A., and Tsvetkov, V.B. (2022). Broadband Supercontinuum Generation in Dispersion Decreasing Fibers in the Spectral Range 900–2400 nm. Photonics, 9.

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