Process development for waveguide chemical sensors with integrated polymeric sensitive layers

SPIE MOEMS-MEMS Pub Date : 2008-02-07 DOI:10.1117/12.765237
Raghu Amberkar, Zhan Gao, Jongwon Park, D. Henthorn, Chang-Soo Kim
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引用次数: 3

Abstract

Due to the proper optical property and flexibility in the process development, an epoxy-based, high-aspect ratio photoresist SU-8 is now attracting attention in optical sensing applications. Manipulation of the surface properties of SU-8 waveguides is critical to attach functional films such as chemically-sensitive layers. We describe a new integration process to immobilize fluorescence molecules on SU-8 waveguide surface for application to intensity-based optical chemical sensors. We use two polymers for this application. Spin-on, hydrophobic, photopatternable silicone is a convenient material to contain fluorophore molecules and to pattern a photolithographically defined thin layer on the surface of SU-8. We use fumed silica powders as an additive to uniformly disperse the fluorophores in the silicone precursor. In general, additional processes are not critically required to promote the adhesion between the SU-8 and silicone. The other material is polyethylene glycol diacrylate (PEGDA). Recently we demonstrated a novel photografting method to modify the surface of SU-8 using a surface bound initiator to control its wettability. The activated surface is then coated with a monomer precursor solution. Polymerization follows when the sample is exposed to UV irradiation, resulting in a grafted PEGDA layer incorporating fluorophores within the hydrogel matrix. Since this method is based the UV-based photografting reaction, it is possible to grow off photolithographically defined hydrogel patterns on the waveguide structures. The resulting films will be viable integrated components in optical bioanalytical sensors. This is a promising technique for integrated chemical sensors both for planar type waveguide and vertical type waveguide chemical sensors.
集成聚合物敏感层波导化学传感器的工艺开发
基于环氧树脂的高宽高比光刻胶SU-8由于其良好的光学性能和在工艺开发中的灵活性,目前在光学传感应用中引起了人们的关注。操纵SU-8波导的表面特性对于附加功能薄膜(如化学敏感层)至关重要。我们描述了一种新的将荧光分子固定在SU-8波导表面的集成工艺,用于基于强度的光学化学传感器。我们在这个应用中使用了两种聚合物。自旋、疏水、可光刻的硅酮是一种方便的材料,可以包含荧光团分子,并在SU-8表面上形成光刻定义的薄层。我们使用气相硅粉作为添加剂来均匀分散硅前驱体中的荧光团。一般来说,不需要额外的工艺来促进SU-8和硅胶之间的粘附。另一种材料是聚乙二醇二丙烯酸酯(PEGDA)。最近,我们展示了一种新的光接枝方法,利用表面结合引发剂来修饰SU-8的表面,以控制其润湿性。然后用单体前驱体溶液涂覆活化表面。当样品暴露在紫外线照射下时,聚合发生,导致接枝PEGDA层在水凝胶基质内结合荧光团。由于该方法是基于uv光接枝反应,因此可以在波导结构上生长出光刻定义的水凝胶图案。所得薄膜将成为光学生物分析传感器中可行的集成元件。这是一种很有前途的集成化学传感器技术,无论是平面型波导还是垂直型波导化学传感器。
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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