Yoav Dana, Yehudit Garcia, Aleksei Kukin, Lauren Dallachiesa, Sterenn Guerrier, Nicolas K Fontaine, Dan M Marom
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引用次数: 0
摘要
光子灯笼(PL)空间多路复用器在未来的大容量模分多路复用(MDM)光通信网络和自由空间光通信等一系列应用中大有可为。它们能在多个单模(SM)光源和同一尺寸的多模(MM)波导之间实现高效转换。PL 多路复用器的工作原理是促进 SM 阵列空间和单一 MM 空间之间的绝热转换。然而,目前的制造方法迫使这些器件的尺寸达到数毫米,使得与微尺度光子系统的集成变得相当具有挑战性。三维微米和纳米打印技术的出现,使具有高折射率对比(光聚合物-空气)的独立光子结构的制造成为可能。在这项工作中,我们介绍了一种 6 模混合、375 微米长 PL 的设计、制造和特性分析,它可以在六个单模输入和一个六模波导之间进行转换。该波导采用基于遗传算法的逆向设计方法进行设计,并使用基于双光子聚合的商用 3D 打印机和光聚合物直接在 7 芯光纤上进行制造。虽然波导显示出很高的指数对比度,但测量到的插入损耗(-2.6 dB)、偏振相关损耗(-0.2 dB)和模式相关损耗(-4.4 dB)都很低。
Free-standing microscale photonic lantern spatial mode (De-)multiplexer fabricated using 3D nanoprinting.
Photonic lantern (PL) spatial multiplexers show great promise for a range of applications, such as future high-capacity mode division multiplexing (MDM) optical communication networks and free-space optical communication. They enable efficient conversion between multiple single-mode (SM) sources and a multimode (MM) waveguide of the same dimension. PL multiplexers operate by facilitating adiabatic transitions between the SM arrayed space and the single MM space. However, current fabrication methods are forcing the size of these devices to multi-millimeters, making integration with micro-scale photonic systems quite challenging. The advent of 3D micro and nano printing techniques enables the fabrication of freestanding photonic structures with a high refractive index contrast (photopolymer-air). In this work we present the design, fabrication, and characterization of a 6-mode mixing, 375 µm long PL that enables the conversion between six single-mode inputs and a single six-mode waveguide. The PL was designed using a genetic algorithm based inverse design approach and fabricated directly on a 7-core fiber using a commercial two-photon polymerization-based 3D printer and a photopolymer. Although the waveguides exhibit high index contrast, low insertion loss (-2.6 dB), polarization dependent (-0.2 dB) and mode dependent loss (-4.4 dB) were measured.
期刊介绍:
Light: Science & Applications is an open-access, fully peer-reviewed publication.It publishes high-quality optics and photonics research globally, covering fundamental research and important issues in engineering and applied sciences related to optics and photonics.