Microcapillary Electrophoresis Chip Device Integrated with Micro Focusing Lens Structures and Its Biomedical Applications

Suz-Kai Hsiung , Gwo-Bin Lee , Che-Hsin Lin , Chun-Hong Lee
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引用次数: 2

Abstract

In this paper, we present a micro-electro-mechanical-system based on a microcapillary electrophoresis chip device integrated with optical detection components, including a micro-focusing lens structure and buried optic fibers. This is a promising approach to enhance the optical signal of the laser-induced fluorescence system for biomedical detection applications. This study utilized microcapillary electrophoresis (micro-CE) chips with two specific polymer materials, polymethylmethacrylate (PMMA) and polydimethylsiloxane (PDMS). Both are capable of performing multiple-wavelength fluorescence detection by using integrated optic components. These include multimode optic fiber pairs and a micro-focusing-lens structure, embedded downstream of the separation channel. For detection purposes, the fluorescence signals are enhanced by positioning micro-focusing-lens structures at the outlets of the excitation fibers and the inlets of the detection fibers. In this study, two types of micro-focusing-lens are proposed—fixed-focal-length and controllable micro-lenses. They are made from different materials—PMMA and PDMS, respectively. With regard to the fixed-focal-length micro-lenses, the profile of the micro-lens curve can be formed by the defined master mold with specific temperatures and pressures. With regard to the controllable micro-lens design, deformations of the two flexible surfaces can be generated after pressurized index-matching fluid is injected into the pneumatic side-chambers. The side-chambers can be deflected as a double convex lens to focus both the excitation light source and the fluorescent emission signal. Experimental results revealed that the power amplitude of the excitation laser light can be enhanced by up to 5.4 fold. Fluorescein isothiocyanate, dye labeled protein samples and DNA markers are then utilized for micro-CE chip testing. The results indicated that signal amplitude can be enhanced from 1.7 to 2.6 fold when compared with cases without the micro-lens. According to the experimental results, the developed device has a great potential to be integrated with other microfluidic devices for further biomedical applications.

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集成微聚焦透镜结构的微毛细管电泳芯片及其生物医学应用
本文提出了一种基于微毛细管电泳芯片的微机电系统,该系统集成了光学检测元件,包括微聚焦透镜结构和埋地光纤。这是一种很有前途的方法,可以增强激光诱导荧光系统的光信号,用于生物医学检测。本研究利用两种特定高分子材料聚甲基丙烯酸甲酯(PMMA)和聚二甲基硅氧烷(PDMS)的微毛细管电泳(micro-CE)芯片。两者都能够通过使用集成光学元件进行多波长荧光检测。这些包括多模光纤对和嵌入在分离通道下游的微聚焦透镜结构。为了检测目的,通过在激发纤维的出口和检测纤维的进口定位微聚焦透镜结构来增强荧光信号。本研究提出了两种类型的微聚焦透镜:定焦距微透镜和可控微透镜。它们由不同的材料制成,分别是pmma和PDMS。对于定焦距微透镜,微透镜曲线的轮廓可以通过确定的母模在特定的温度和压力下形成。在可控微透镜设计中,向气动侧室注入加压的指数匹配流体后,可使两个柔性表面产生变形。侧室可以偏转成双凸透镜,聚焦激发光源和荧光发射信号。实验结果表明,激发激光的功率幅值可提高5.4倍。然后利用异硫氰酸荧光素、染料标记的蛋白质样品和DNA标记物进行微ce芯片测试。结果表明,与没有微透镜的情况相比,信号幅值可提高1.7 ~ 2.6倍。实验结果表明,该装置具有与其他微流体装置集成的巨大潜力,可用于进一步的生物医学应用。
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