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Design of large mode area all-solid anti-resonant fiber for high-power lasers

Published online by Cambridge University Press:  19 May 2021

Xin Zhang
Affiliation:
National Center of Laser Technology, Institute of Laser Engineering, Beijing University of Technology, Beijing 100124, China
Shoufei Gao
Affiliation:
Institute of Photonics Technology, Jinan University, Guangzhou 510632, China
Yingying Wang*
Affiliation:
Institute of Photonics Technology, Jinan University, Guangzhou 510632, China
Wei Ding
Affiliation:
Institute of Photonics Technology, Jinan University, Guangzhou 510632, China
Pu Wang*
Affiliation:
National Center of Laser Technology, Institute of Laser Engineering, Beijing University of Technology, Beijing 100124, China
*
Correspondence to: P. Wang, Beijing University of Technology, No. 100 Pingleyuan, Chaoyang District, Beijing 100124, China; Y. Wang, Jinan University, No. 601 West Huangpu Avenue, Guangzhou 510632, China. Email: wangpuemail@bjut.edu.cn (P. Wang); dearyingyingwang@hotmail.com (Y. Wang)
Correspondence to: P. Wang, Beijing University of Technology, No. 100 Pingleyuan, Chaoyang District, Beijing 100124, China; Y. Wang, Jinan University, No. 601 West Huangpu Avenue, Guangzhou 510632, China. Email: wangpuemail@bjut.edu.cn (P. Wang); dearyingyingwang@hotmail.com (Y. Wang)

Abstract

High-power fiber lasers have experienced a dramatic development over the last decade. Further increasing the output power needs an upscaling of the fiber mode area, while maintaining a single-mode output. Here, we propose an all-solid anti-resonant fiber (ARF) structure, which ensures single-mode operation in broadband by resonantly coupling higher-order modes into the cladding. A series of fibers with core sizes ranging from 40 to 100 μm are proposed exhibiting maximum mode area exceeding 5000 μm2. Numerical simulations show this resonant coupling scheme provides a higher-order mode (mainly TE01, TM01, and HE21) suppression ratio of more than 20 dB, while keeping the fundamental mode loss lower than 1 dB/m. The proposed structure also exhibits high tolerance for core index depression.

Information

Type
Research Article
Creative Commons
Creative Common License - CCCreative Common License - BY
This is an Open Access article, distributed under the terms of the Creative Commons Attribution licence (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted re-use, distribution, and reproduction in any medium, provided the original work is properly cited.
Copyright
© The Author(s), 2021. Published by Cambridge University Press in association with Chinese Laser Press
Figure 0

Figure 1 (a) Schematic cross-section of the proposed fiber structure. (b) Refractive index profile of the proposed optical fiber.

Figure 1

Figure 2 (a) Surface profile of the power flow of the FM and the first HOM of the two fibers at 1.06 μm. (b) Modal refractive indices of the FM (green), first HOM (red), and ARE FM (blue) as a function of d/D. (c) Modal refractive indices of the FM (solid), first HOM (dashed), and ARE FM (dashed and dotted) of Fiber 1 (red) and Fiber 2 (black) at 1 μm.

Figure 2

Figure 3 (a) The FM (solid) and first HOM (dashed) leakage loss for Fiber 1 (red) and Fiber 2 (black). (b) HOM suppression for the fibers in (a).

Figure 3

Table 1 Summary of fiber parameters for mode area scaling.

Figure 4

Figure 4 (a) The FM (solid) and first HOM (dashed) leakage loss under D = 40 μm (red), 60 μm (green), 80 μm (blue), and 100 μm (navy). (b) HOM suppression for the fibers in (a). (c) The FM (square) and first HOM (triangle) leakage loss with increased core diameter. (d) HOM suppression under different core sizes.

Figure 5

Figure 5 The legend of some structures described in Table 2 .

Figure 6

Table 2 Summary of fiber parameters for refractive index depression of the core.

Figure 7

Figure 6 (a) The FM (squares) and first HOM (triangles) leakage loss for three index depression values with increasing core diameter. (b) HOM suppression for different Δn.