TY - JOUR
T1 - A novel multicore Er/Yb co-doped microstructured optical fiber amplifier with peanut-shaped air holes cladding
AU - Zhang, Yifan
AU - Zhao, Yifei
AU - Fang, Ziwei
AU - Liu, Jiantao
AU - Xia, Changming
AU - Hou, Zhiyun
AU - Zhao, Xuesong
AU - Tan, Zhongwei
AU - Dong, Yi
AU - Zhou, Guiyao
AU - Yuan, Jinhui
N1 - Publisher Copyright:
© 2024 the author(s), published by De Gruyter, Berlin/Boston.
PY - 2024/3/2
Y1 - 2024/3/2
N2 - The multicore fiber amplifier, as a key component in spatial division multiplexing (SDM) communication systems, presents higher technical difficulty compared to traditional multi-channel single core fiber amplifiers, which has sparked widespread attention. To achieve balance, efficiency, miniaturization, and cost-effectiveness in the performance of multi-core optical fiber amplifiers, we propose an innovative triple cladding 13-core Er/Yb co-doped microstructured fiber (13CEYDMOF). The proposed fiber features an outer cladding with peanut-shaped air holes, which enables uniform excitation of the 13 cores using a single multimode laser pump source within the inner cladding. This approach also prevents damage or aging of the fiber's outer coating due to the pump laser. Furthermore, the design of Peanut-Shaped Air Holes effectively increases the numerical aperture (NA) of the inner cladding while reducing the outer diameter of the fiber, enhancing the fiber's mechanical flexibility. To address the coupling difficulties caused by air holes, we bi-directionally pump the 13CEYDMOFA by utilizing a combined technique of the side winding and end pumping. The experimental results show that the 13CEYDMOFA can achieve an average gain of 23.8 dB, a noise figure (NF) of ∼4.6 dB, and an inter-core gain difference of less than 2 dB in the wavelength range of 1529-1565 nm. The in-line amplified transmission experiment demonstrates that the 13CEYDMOFA is well suited for the 13 spatial channels transmission. To the best of our knowledge, this is the first time to realize high performance telecommunication band amplification in a multicore microstructure fiber.
AB - The multicore fiber amplifier, as a key component in spatial division multiplexing (SDM) communication systems, presents higher technical difficulty compared to traditional multi-channel single core fiber amplifiers, which has sparked widespread attention. To achieve balance, efficiency, miniaturization, and cost-effectiveness in the performance of multi-core optical fiber amplifiers, we propose an innovative triple cladding 13-core Er/Yb co-doped microstructured fiber (13CEYDMOF). The proposed fiber features an outer cladding with peanut-shaped air holes, which enables uniform excitation of the 13 cores using a single multimode laser pump source within the inner cladding. This approach also prevents damage or aging of the fiber's outer coating due to the pump laser. Furthermore, the design of Peanut-Shaped Air Holes effectively increases the numerical aperture (NA) of the inner cladding while reducing the outer diameter of the fiber, enhancing the fiber's mechanical flexibility. To address the coupling difficulties caused by air holes, we bi-directionally pump the 13CEYDMOFA by utilizing a combined technique of the side winding and end pumping. The experimental results show that the 13CEYDMOFA can achieve an average gain of 23.8 dB, a noise figure (NF) of ∼4.6 dB, and an inter-core gain difference of less than 2 dB in the wavelength range of 1529-1565 nm. The in-line amplified transmission experiment demonstrates that the 13CEYDMOFA is well suited for the 13 spatial channels transmission. To the best of our knowledge, this is the first time to realize high performance telecommunication band amplification in a multicore microstructure fiber.
KW - doped fiber amplifiers
KW - microstructured optical fibers
KW - multicore fibers
KW - space-division multiplexing
UR - http://www.scopus.com/inward/record.url?scp=85187260848&partnerID=8YFLogxK
U2 - 10.1515/nanoph-2023-0584
DO - 10.1515/nanoph-2023-0584
M3 - Article
AN - SCOPUS:85187260848
SN - 2192-8606
VL - 13
SP - 891
EP - 899
JO - Nanophotonics
JF - Nanophotonics
IS - 6
ER -