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Silica-on-silicon waveguide integrated polydimethylsiloxane lab-on-a-chip for quantum dot fluorescence bio-detection

机译:硅基二氧化硅波导集成的聚二甲基硅氧烷芯片实验室,用于量子点荧光生物检测

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Integration of microfluidics and optical components is an essential requirement for the realization of optical detection in lab-on-a-chip (LOC). In this work, a novel hybrid integration of silica-on-silicon (SOS) wave guide and polydymethylsiloxane (PDMS) microfluidics for realizing optical detection based biochip is demon strated. SOS is a commonly used platform for integrated photonic circuits due to its lower absorption coefficient of silica and the availability of advanced microfabrication technologies for fabricating complicated opti cal components. However, the fabrication of complex microfluidics circuits on SOS is an expensive process. On the other hand, any complex 3D and high-aspect-ratio microstructures for the microfluidic applications can be easily patterned on PDMS using soft lithography. By exploring the advantages of these two materials, the proposed hybrid integration method greatly simplifies the fabrication of optical LOC. Two simple technologies-namely, diamond machining and soft lithography-were employed for the integration of an optical microfluidic system. Use of PDMS for the fabrication of any complex 3D microfluidics structures, together with the integration of low loss silica-on-silicon photonic waveguides with a straight microfluidic channel, opens up new possibilities to produce low-cost biochips. The performance of SOS-PDMS-integrated hybrid biochip is demonstrated with the detection of laser induced fluorescence of quantum dots. As quantum dots have immense application potential for biodetection, they are used for the demonstration of biodetection.
机译:微流体和光学组件的集成是在芯片实验室(LOC)中实现光学检测的基本要求。在这项工作中,展示了一种新颖的硅-硅(SOS)波导和聚二甲基硅氧烷(PDMS)微流控技术的混合集成,以实现基于光学检测的生物芯片。 SOS是集成光子电路的常用平台,因为它的二氧化硅吸收系数较低,并且可以使用先进的微细加工技术来制造复杂的光学元件。但是,在SOS上制造复杂的微流体电路是一个昂贵的过程。另一方面,可以使用软光刻技术轻松地在PDMS上对用于微流体应用的任何复杂的3D和高纵横比微结构进行图案化。通过探索这两种材料的优势,提出的混合集成方法极大地简化了光学LOC的制造。光学微流体系统的集成采用了两种简单的技术,即金刚石加工和软光刻技术。将PDMS用于制造任何复杂的3D微流体结构,以及将低损耗硅基硅光子波导与直的微流体通道集成在一起,为生产低成本生物芯片打开了新的可能性。通过检测激光诱导的量子点荧光证明了SOS-PDMS集成的杂交生物芯片的性能。由于量子点在生物检测中具有巨大的应用潜力,因此它们被用于生物检测的演示。

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