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A controllable micro-lens structure for bio-analytical applications

机译:用于生物分析应用的可控微透镜结构

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In this study, a new and simple design of a controllable micro-lens structures capable of the enhancement of laser induced fluorescence (LIF) system has been demonstrated. Two pneumatic sidechambers were placed between a micro sample flow channel and an optic fiber channel. The interval between the side-chamber and the micro sample channel was used to form a controllable micro-lens structure. A deformation of the micro-lens structure can be generated after a pressurized index-matching fluid was injected into the pneumatic side-chambers. The side-chambers can be deflected as a convex lens to focus both the laser light source and the fluorescence emission. The profile and the focal length of the micro-lens structure can be adjusted by using different applied pressures accordingly so that bio-samples with a low concentration can be detected. Using low-cost polymeric materials such as polydimethylsiloxane (PDMS), rapid and reliable fabrication techniques involving standard lithography and replication process was employed for the formation of the proposed chip device. Finally, experimental results clearly revealed the micro-lens structure can be deformed as a convex lens to focus the laser light source and the fluorescence signal can be enhanced successfully. The developed device has a great potential to be integrated with other microfluidic devices for further biomedical applications.
机译:在该研究中,已经证实了能够增强激光诱导的荧光(LiF)系统的可控微透镜结构的新简单设计。将两个气动侧链放置在微样品流动通道和光纤通道之间。侧腔和微样通道之间的间隔用于形成可控微透镜结构。在将加压的指数匹配流体注入气动侧腔室中,可以产生微透镜结构的变形。侧腔可以被偏转为凸透镜以聚焦激光光源和荧光发射。可以通过相应地使用不同的施加的压力来调节微透镜结构的轮廓和焦距,从而可以检测具有低浓度的生物样品。使用低成本的聚合材料,例如聚二甲基硅氧烷(PDMS),快速和可靠的制造技术,涉及标准光刻和复制过程被用于所提出的芯片器件的形成。最后,实验结果清楚地揭示了微透镜结构可以使微透镜结构变形为凸透镜,以聚焦激光光源,并且可以成功地增强荧光信号。开发的装置具有很大的潜力,可以与其他微流体装置集成,以进行进一步的生物医学应用。

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