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结合聚合物薄膜、微加工技术和3D打印制造独立式光子器件。

Fabrication of freestanding photonic devices combining polymer films with microfabrication techniques and 3D printing.

作者信息

Hack Erwin, Shorubalko Ivan, Graf Jil, Zolliker Peter, Mavrona Elena

出版信息

Opt Express. 2023 Aug 28;31(18):29968-29974. doi: 10.1364/OE.497433.

Abstract

We report a technological concept for freestanding photonic elements based on metamaterials fabricated on polymer films by clean-room processes and framed using 3D printing. A spin-coated cyclic olefin copolymer (TOPAS) of variable thickness down to one micrometer was used as the substrate onto which metamaterials were fabricated using optical lithography. We demonstrate the possibility of applying a second TOPAS layer to protect the device or to allow for stacking another metamaterial layer. To obtain freestanding elements, frames were 3D printed directly on top of the metamaterial before lift-off from the carrier wafer. This ensured maintaining the flatness of the elements. Both the cleanroom process and the 3D printing enabled the design and manufacturing of elements in different sizes and shapes, e.g., to adapt to specific experimental set-ups and holder geometries or to be compatible with standard optical mounts. While TOPAS is transparent for wavelengths from UV to the far infrared, except for a few infrared absorption lines, we illustrate the concept with the simulation and manufacturing of THz band-pass filters. The performance of the fabricated filters was assessed using THz time-domain spectroscopy. The process is scalable to other wavelength ranges and has the potential for upscaling in manufacturing.

摘要

我们报告了一种基于超材料的独立光子元件的技术概念,该超材料通过洁净室工艺在聚合物薄膜上制造,并使用3D打印进行框架构建。一种可变厚度低至一微米的旋涂环状烯烃共聚物(TOPAS)被用作基板,在其上使用光刻技术制造超材料。我们展示了应用第二层TOPAS层来保护器件或允许堆叠另一个超材料层的可能性。为了获得独立元件,在从载体晶圆上剥离之前,直接在超材料顶部3D打印框架。这确保了元件的平整度。洁净室工艺和3D打印都能够设计和制造不同尺寸和形状的元件,例如,以适应特定的实验装置和夹具几何形状,或与标准光学支架兼容。虽然除了几条红外吸收线外,TOPAS对从紫外到远红外的波长是透明的,但我们通过太赫兹带通滤波器的模拟和制造来说明这一概念。使用太赫兹时域光谱法评估所制造滤波器的性能。该工艺可扩展到其他波长范围,并且具有扩大制造规模的潜力。

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