Ultra-broadband polarisation beam splitters and rotators based on 3D-printed waveguides

Aleksandar Nesic, M. Blaicher, P. Marin-Palomo, Christoph Fullner, S. Randel, W. Freude, C. Koos
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引用次数: 2

Abstract

Multi-photon lithography has emerged as a powerful tool for photonic integration, allowing to complement planar photonic circuits by 3D-printed freeform structures such as waveguides or micro-optical elements. These structures can be fabricated with high precision on the facets of optical devices and lend themselves to highly efficient package-level chip-chip-connections in photonic assemblies. However, plain light transport and efficient coupling is far from exploiting the full geometrical design freedom that is offered by 3D laser lithography. Here, we extend the functionality of 3D-printed optical structures to manipulation of optical polarization states. We demonstrate compact ultra-broadband polarization beam splitters (PBS) that can be combined with polarization rotators (PR) and mode-field adapters into a monolithic 3D-printed structure, fabricated directly on the facets of optical devices. In a proof-of-concept experiment, we demonstrate measured polarization extinction ratios beyond 11 dB over a bandwidth of 350 nm at near-infrared (NIR) telecommunication wavelengths around 1550 nm. We demonstrate the viability of the device by receiving a 640 Gbit/s dual-polarization data signal using 16-state quadrature amplitude modulation (16QAM), without any measurable optical-signal-to-noise-ratio (OSNR) penalty compared to a commercial PBS.
基于3D打印波导的超宽带偏振分束器和旋转器
多光子光刻已经成为光子集成的强大工具,允许通过3D打印的自由形式结构(如波导或微光学元件)来补充平面光子电路。这些结构可以在光学器件的小平面上高精度地制造,并有助于光子组件中高效的封装级芯片-芯片连接。然而,平面光传输和有效耦合远未利用3D激光光刻提供的完全几何设计自由度。在这里,我们将3D打印光学结构的功能扩展到光学偏振态的操作。我们展示了紧凑的超宽带偏振分束器(PBS),该分束器可以与偏振旋转器(PR)和模式场适配器组合成单片3D打印结构,直接在光学器件的小平面上制造。在概念验证实验中,我们证明了在1550 nm左右的近红外(NIR)电信波长下,在350 nm的带宽上测量到的超过11dB的偏振消光比。我们通过使用16态正交幅度调制(16QAM)接收640Gbit/s的双偏振数据信号来证明该设备的可行性,与商业PBS相比,没有任何可测量的光信噪比(OSNR)损失。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
10.90
自引率
0.00%
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