论文标题

低损坏的单模杂交晶格空心光子光子晶体纤维

Low-loss single-mode hybrid-lattice hollow-core photonic crystal fiber

论文作者

Amrani, Foued, Osório, Jonas H., Delahaye, Frédéric, Giovanardi, Fabio, Vincetti, Luca, Debord, Benoît, Gérôme, Frédéric, Benabid, Fetah

论文摘要

超大损耗的近期示范抑制了耦合(IC)中空光子晶体纤维(HCPCFS),将它们作为下一代长纤维光纤系统的严重候选者。需要对这一前景的障碍,也需要对稳定和高质量的光束传递等短途应用,是设计和制造IC引导纤维的挑战,它结合了超低损失,真正且稳健的单模型,以及偏振的维护操作。现在提出的设计解决方案需要在低损失和真正的单一态度之间取决。在这里,我们提出了一个新的IC HCPCF概念,用于获得低损坏和有效的单模操作。该纤维具有由kagome-yubular晶格(HKT)组成的杂种覆层。这种微观结构覆层的新概念可以显着减少限制损失,同时保留真正稳健的单模操作。实验结果表明,HKT-IC-HCPCF的最小损耗图在1050 nm时为1.6 db/km,高率的高阶模式灭绝比为47.0 dB,长纤维为10 m。通过移动纤维并改变耦合条件来测试纤维单模型的鲁棒性。本文提出的设计为完成HCPCF的新途径开辟了一条新的途径,该途径结合了强大的超低损耗传输和单模光束传递,并为理解IC指导的理解提供了新的见解。

The remarkable recent demonstrations in ultralow loss Inhibited-Coupling (IC) hollow-core photonic crystal fibers (HCPCFs) place them as serious candidates for the next-generation of long-haul fiber optics systems. A hindrance to this prospect, but also to short-haul applications such as micromachining, where stable and high-quality beam delivery is needed, is the challenge to design and fabricate an IC-guiding fiber that combines ultra-low loss, truly and robust single-modeness, and polarization-maintaining operation. Design solutions proposed up to now require a trade-off between low loss and truly single modeness. Here, we propose a novel concept of IC HCPCF for obtaining low-loss and effective single-mode operation. The fiber is endowed with a hybrid cladding composed of a Kagome-tubular lattice (HKT). This new concept of microstructured cladding allows to significantly reduce confinement loss and, at the same time, preserving a truly and robust single-mode operation. Experimental results show a HKT-IC-HCPCF with a minimum loss figure of 1.6 dB/km at 1050 nm and a higher-order modes extinction ratio as high as 47.0 dB for a 10 m long fiber. The robustness of the fiber single-modeness was tested by moving the fiber and varying the coupling conditions. The design proposed herein opens a new route for the accomplishment of HCPCFs that combine robust ultralow loss transmission and single-mode beam delivery and provides new insight into the understanding of IC guidance.

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