首页> 外文期刊>Electrophoresis: The Official Journal of the International Electrophoresis Society >Microcapillary electrophoresis chips utilizing controllable micro-lens structures and buried optical fibers for on-line optical detection.
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Microcapillary electrophoresis chips utilizing controllable micro-lens structures and buried optical fibers for on-line optical detection.

机译:微毛细管电泳芯片利用可控的微透镜结构和埋入式光纤进行在线光学检测。

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In this study, a new design of a controllable micro-lens structure capable of the enhancement of LIF detection system has been demonstrated, which can be further integrated with buried optical fibers on a micro-CE chip for sample separation and detection. Two pneumatic side-chambers were placed between a micro-CE channel and an optical fiber channel. The intervals between the side-chamber and the microchannel were used to form two surfaces of the controllable micro-lens structure. Deformations of the two surfaces can be generated after pressurized index-matching fluid was 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. The profile and the focal length of the micro-lens structure can be actively adjusted by applying different liquid pressures so that biosamples with a low concentration can be detected. Using low-cost polymeric materials such as polydimethylsiloxane, rapid and reliable fabrication techniques involving standard lithography and replication process was employed for the formation of the proposed chip device. Experimental results revealed the controllable micro-lens structure can be successfully deformed as a convex lens to focus the laser light source and the collected fluorescence signal can be enhanced accordingly. The power amplitude of excitation laser light can be enhanced by 5.4-fold. FITC dye and DNA markers were then utilized for micro-CE testing. The results indicated that the signal amplitude could be enhanced 2.5-fold when compared to the case without the activation of 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.
机译:在这项研究中,已经证明了能够增强LIF检测系统的可控微透镜结构的新设计,可以将其与微CE芯片上的埋入式光纤进一步集成以进行样品分离和检测。将两个气动侧室放置在微型CE通道和光纤通道之间。侧室与微通道之间的间隔用于形成可控微透镜结构的两个表面。将加压的折射率匹配流体注入气动侧室后,可能会产生两个表面的变形。侧室可以偏转为双凸透镜,以聚焦激发光源和荧光发射信号。可以通过施加不同的液体压力来主动调整微透镜结构的轮廓和焦距,从而可以检测出低浓度的生物样品。使用低成本的聚合材料,例如聚二甲基硅氧烷,采用涉及标准光刻和复制工艺的快速可靠的制造技术来形成所提出的芯片器件。实验结果表明,可控的微透镜结构可以成功地变形为凸透镜以聚焦激光光源,从而可以增强所收集的荧光信号。激发激光的功率幅度可以提高5.4倍。然后将FITC染料和DNA标记用于微CE测试。结果表明,与未激活微透镜的情况相比,信号幅度可以提高2.5倍。根据实验结果,开发的设备具有与其他微流体设备集成的巨大潜力,可用于进一步的生物医学应用。

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