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Evaluation of miniaturized mixer and integrated optical components for cell sorting.

机译:评估用于细胞分选的小型混合器和集成光学组件。

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摘要

Conventional cell cytometers are often bulky and thus not convenient for bio-medical analysis where portable devices are desired. They also suffer from the drawback of high cost due to the complicated and expensive optical detection system involved. Therefore miniaturizing conventional cell cytometer is highly demanded as it offers an opportunity to transform the conventional bulky systems to more cost-efficient and portable microfluidic cell sorting devices. In addition to the advantages reduced cost and enhanced portability, microfluidic cell sorting devices require only a tiny amount of sample for analysis. In this thesis, one common microfluidic cell sorting device is developed using similar conventional functions and concepts but different sorting method. Unlike most of the conventional cell cytometers in which an electrical field or magnetic field is employed to deflect the charged target cells to the collecting container, microfluidic cell sorting devices use the fluid flow to control the movement of the targeted cells to the collecting reservoir. By using an electroosmitic pump, the response time of the flow switch is significantly lowered, leading to a much higher sorting efficiency.;Fabrication of optical elements by deposition of optical materials on glass or silicon wafer has been reported. However, this Micro Electro-Mechanical (MEM) technique requires special equipment and cleanroom facilities used in the semiconductor industry. A good alternative to the MEMS technique is soft lithography where optical elements can be created using polymers. In this work, ultraviolet-sensitive photo resists SU8 is used to fabricate the microfluidic cell sorting devices and the optical elements. By using the mask with the patterns of the microchannel network and optical elements, the optical elements can be fabricated with the microchannel, eliminating the problem of alignment. Experiments are also conducted to evaluate the integrated optical elements.;To prevent cross-contamination, samples are usually prepared and are only mixed inside the microfluidic devices by the embedded mixers. Such embedded mixers, however, pose a great challenge as the small characteristic length of a microfluidic device tends to give a laminar flow and diffusion-dominated mixing. A simple passive micromixer is investigated to find the possibilities to integrate it to the microfluidic devices. To truly understand the diffusional mixing, a Y channel mixer is studied through the numerical and experimental investigations. Based on the results found, a possible design is also proposed and evaluated by experiments.;Despite the advantages of microfluidic cell sorting devices, there are some issues need to be addressed before realization of such devices. For example, more studies are required on the successful integration of the optical elements in the devices. In microfluidic, the transport phenomena is also different from that in macroscopic. Unlike that in macroscopic, surface forces are important in microfluidics. They result in pressure-induced flow which gives the parabolic profile of the velocity along the channel. Also, a plug-like velocity which is generated by the electoosmitic flow is required for the more controllable and accurate detection. To suppress the pressure-driven flow, hydro-resistance elements (Shallow channel network) are implemented on the microfluidic devices.
机译:传统的细胞流式细胞仪通常体积庞大,因此对于需要便携式设备的生物医学分析不方便。由于所涉及的复杂且昂贵的光学检测系统,它们还遭受高成本的缺点。因此,迫切需要使常规细胞流式细胞仪小型化,因为它提供了将常规笨重系统转变为更具成本效益的便携式微流体细胞分选设备的机会。除了降低成本和提高便携性的优点外,微流体细胞分选设备仅需要极少量的样品即可进行分析。本文采用相似的常规功能和概念,但采用不同的分选方法,开发出一种通用的微流细胞分选装置。与大多数传统的细胞流式细胞仪不同,在传统的细胞流式细胞仪中,电场或磁场将带电的靶细胞偏转到收集容器,微流细胞分选设备使用流体流来控制靶细胞向收集容器的运动。通过使用电磁泵,流量开关的响应时间显着降低,从而提高了分选效率。已经报道了通过在玻璃或硅片上沉积光学材料来制造光学元件的方法。但是,这种微机电(MEM)技术需要半导体行业中使用的专用设备和洁净室设施。 MEMS技术的一个很好的选择是软光刻,其中可以使用聚合物创建光学元件。在这项工作中,使用对紫外线敏感的光刻胶SU8来制造微流体细胞分选设备和光学元件。通过使用具有微通道网络和光学元件的图案的掩模,可以用微通道制造光学元件,从而消除了对准问题。为了评估集成光学元件,还进行了实验。为了防止交叉污染,通常准备样品,并仅通过嵌入式混合器在微流控设备内部进行混合。然而,这种嵌入式混合器提出了巨大的挑战,因为微流体装置的小特征长度倾向于产生层流和扩散为主的混合。研究了一种简单的无源微混合器,以发现将其集成到微流体设备中的可能性。为了真正理解扩散混合,通过数值和实验研究对Y通道混合器进行了研究。基于发现的结果,还提出了可能的设计并通过实验进行了评估。尽管微流体细胞分选装置具有很多优点,但是在实现这种装置之前还需要解决一些问题。例如,需要将光学元件成功集成到设备中的更多研究。在微流体中,传输现象也与宏观中的不同。与宏观上不同,表面力在微流体学中很重要。它们导致压力引起的流动,从而产生沿通道速度的抛物线轮廓。另外,为了更可控和精确地检测,需要由电渗流产生的塞状速度。为了抑制压力驱动的流动,在微流体装置上实现了耐水元件(浅通道网络)。

著录项

  • 作者

    Wang, Shuwen.;

  • 作者单位

    University of Waterloo (Canada).;

  • 授予单位 University of Waterloo (Canada).;
  • 学科 Engineering Mechanical.
  • 学位 M.A.Sc.
  • 年度 2009
  • 页码 99 p.
  • 总页数 99
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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