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通过将硅油诱导膨胀的聚二甲基硅氧烷(PDMS)膜与微铣微流控芯片键合制成的可调微透镜阵列。

Tunable microlens array fabricated by a silicone oil-induced swelled polydimethylsiloxane (PDMS) membrane bonded to a micro-milled microfluidic chip.

作者信息

Chen Pin-Chuan, Chen Liang-Ta, Yeh Cing-Sung

出版信息

Opt Express. 2020 Sep 28;28(20):29815-29828. doi: 10.1364/OE.404637.

Abstract

Microlens arrays (MLAs) nowadays are critical micro-optical components and they can be applied in many application fields, such as optical communication systems and flat panel display modules. This article describes a novel approach to the fabrication of tunable, highly reliable, and uniform polydimethylsiloxane (PDMS) MLAs. A polydimethylsiloxane (PDMS) membrane is bonded to a micro-milled poly(methyl methacrylate) (PMMA) microfluidic chip and exposed to silicone oil of a specific viscosity. Molecules in the oil insert themselves into the molecular structure of the PDMS membrane, causing it to swell and subsequently form dome-shaped MLAs. From our experiments, we derived the following conclusions. First, the homogeneous swelling of the PDMS resulted in MLAs with a high numerical aperture (0.5), high uniformity illumination (CV of the illumination intensity is between 2.5%∼5.1%), and high uniformity (CV of sag height of MLAs is less than 0.05). Second, the shorter molecular chains in low-viscosity oils diffused more readily into the PDMS membrane, which increased the effects on swelling, resulting in MLAs with higher sag height and higher numerical aperture. For example, the 5 cst silicone oil resulted in sag height of 191 µm with NA of 0.50, whereas the 100 cst silicone oil resulted in sag height of 86 µm with numerical aperture of 0.33. Finally, the integrated mixer module enabled the simultaneous tuning of the 7 × 7 MLAs simply by adjusting the injection flow rates of the constituent silicone oils.

摘要

如今,微透镜阵列(MLA)是关键的微光学元件,可应用于许多领域,如光通信系统和平板显示模块。本文介绍了一种制造可调谐、高可靠性和均匀性的聚二甲基硅氧烷(PDMS)微透镜阵列的新方法。将聚二甲基硅氧烷(PDMS)膜与微铣制的聚甲基丙烯酸甲酯(PMMA)微流控芯片键合,并暴露于特定粘度的硅油中。油中的分子会插入PDMS膜的分子结构中,使其膨胀,随后形成圆顶形微透镜阵列。通过我们的实验,得出以下结论。首先,PDMS的均匀膨胀产生了具有高数值孔径(0.5)、高均匀性照明(照明强度的CV在2.5%至5.1%之间)和高均匀性(微透镜阵列矢高的CV小于0.05)的微透镜阵列。其次,低粘度油中较短的分子链更容易扩散到PDMS膜中,这增加了对膨胀的影响,从而产生具有更高矢高和更高数值孔径的微透镜阵列。例如,5厘沲的硅油产生的矢高为191μm,数值孔径为0.50,而100厘沲的硅油产生的矢高为86μm,数值孔径为0.33。最后,集成混合器模块只需通过调整组成硅油的注入流速,就能同时对7×7的微透镜阵列进行调谐。

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