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用于片上光互连的独立式毫米级3D波导。

Free-standing millimeter-range 3D waveguides for on-chip optical interconnects.

作者信息

Andrishak Artur, Jacob Bejoys, L Alves Tiago, Maibohm Christian, Romeira Bruno, B Nieder Jana

机构信息

INL - International Iberian Nanotechnology Laboratory, Ultrafast Bio- and Nanophotonics Group, Av. Mestre Veiga, s.n., 4715-330, Braga, Portugal.

出版信息

Sci Rep. 2024 Aug 14;14(1):18899. doi: 10.1038/s41598-024-69522-0.

Abstract

Next-generation energy-efficient photonic integrated systems, such as neuromorphic computational chips require efficient heterogeneous integration of ultracompact light sources and photodetectors through highly dense waveguide circuits. However, interconnecting these devices in emitter-receiver communication circuits remains a challenge and an obstacle towards upscaling heterogeneous photonic chips. Here we report on versatile air-cladded free-standing 3D polymer waveguides (OrmoCore, n≈1.5) spanning up to 900 µm in length without intermediate mechanical support structures, microprinted via two-photon polymerization. The presented waveguides are suitable for on-chip out-of-plane light coupling as well as non-connected 3D crossings, needed for high density optical circuits. The waveguides show optical transmission losses of 1.93 dB mm at λ = 635 nm, and of 3.71 dB mm at λ = 830 nm in the wavelength range of GaAs-based microLEDs spectral emission. On-chip imaging for high-precision alignment and TPP microfabrication are performed seamlessly by utilizing the same laser source for both steps, allowing accurate 3D printing on microstructured substrates. As proof of concept, we interconnect two GaAs-based microLEDs via an on-chip microprinted 3D waveguide. Such combined systems can serve as building blocks of future complex integrated heterogeneous photonic networks.

摘要

下一代节能光子集成系统,如神经形态计算芯片,需要通过高密度波导电路将超紧凑型光源和光电探测器进行高效的异质集成。然而,在发射器-接收器通信电路中连接这些器件仍然是一个挑战,也是扩大异质光子芯片规模的障碍。在此,我们报道了一种通用的空气包覆独立式3D聚合物波导(OrmoCore,n≈1.5),其长度可达900 µm,无需中间机械支撑结构,通过双光子聚合进行微打印。所展示的波导适用于片上平面外光耦合以及高密度光学电路所需的非连接3D交叉。在基于GaAs的微型发光二极管光谱发射波长范围内,该波导在λ = 635 nm时的光传输损耗为1.93 dB/mm,在λ = 830 nm时为3.71 dB/mm。通过在两个步骤中使用相同的激光源,无缝地进行用于高精度对准的片上成像和双光子聚合微加工,从而能够在微结构化衬底上进行精确的3D打印。作为概念验证,我们通过片上微打印3D波导互连了两个基于GaAs的微型发光二极管。这种组合系统可作为未来复杂集成异质光子网络的构建模块。

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