Zhang Yifan, Zhao Yifei, Fang Ziwei, Liu Jiantao, Xia Changming, Hou Zhiyun, Zhao Xuesong, Tan Zhongwei, Dong Yi, Zhou Guiyao, Yuan Jinhui
Guangzhou Key Laboratory for Special Fiber Photonic Devices and Applications, School of Information Optoelectronics Science and Technology, South China Normal University, Guangzhou, Guangdong 510006, China.
Key Laboratory of Photonic Information Technology, Ministry of Industry and Information Technology, School of Optics and Photonics, Beijing Institute of Technology, Beijing 100081, China.
Nanophotonics. 2024 Feb 16;13(6):891-899. doi: 10.1515/nanoph-2023-0584. eCollection 2024 Mar.
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.
多芯光纤放大器作为空间分割复用(SDM)通信系统中的关键部件,与传统的多通道单芯光纤放大器相比,技术难度更高,这引发了广泛关注。为了在多芯光纤放大器的性能上实现平衡、高效、小型化和成本效益,我们提出了一种创新的三包层13芯铒/镱共掺杂微结构光纤(13CEYDMOF)。所提出的光纤具有带花生形气孔的外包层,这使得能够在内包层内使用单个多模激光泵浦源对13个芯进行均匀激发。这种方法还可以防止泵浦激光对光纤外涂层造成损坏或老化。此外,花生形气孔的设计有效地增加了内包层的数值孔径(NA),同时减小了光纤的外径,增强了光纤的机械柔韧性。为了解决由气孔引起的耦合困难,我们利用侧绕和端泵浦相结合的技术对13CEYDMOFA进行双向泵浦。实验结果表明,13CEYDMOFA在1529 - 1565 nm波长范围内可实现平均增益23.8 dB、噪声系数(NF)约为4.6 dB以及芯间增益差小于2 dB。在线放大传输实验表明,13CEYDMOFA非常适合13个空间通道的传输。据我们所知,这是首次在多芯微结构光纤中实现高性能电信波段放大。