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Design, fabrication and modeling of microreactor arrays for biochips and discovery research.

机译:用于生物芯片和发现研究的微反应器阵列的设计,制造和建模。

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To assure microarrays, capable of providing of superior quality, general adoptability, and reduced cost for genetic research, the development of synthesis methods using high yield acid-labile protected monomers rather than photolabile group protected monomers is desirable. The photogenerated acid produced by use of solution photochemistry is one of the suitable acid deprotection reagents. However, using solution photochemistry requires that the reaction sites are isolated from each other to prevent diffusion of reagents during a photolytic reaction.; We present three different types of devices in order to be able to carry out parallel synthesis in the liquid phase on a chip: microwells with an isolation wall and a mechanical seal, microwells with surface tension isolation, and hermetically sealed microfluidic device with an isolation wall. We applied both surface and bulk micromachining technologies for fabrication of those devices. Due to significant enhancement of chemical reaction rate and hybridization rate, the microfluidic devices have more potential for genetic research than microwell devices.; In this dissertation, we also proposed solutions for the various fabrication problems and discussed the use of techniques to simplify and expedite the fabrication process. The validated fidelity from the mismatch detection of both microwell and microfluidic array chips are also given. This dissertation also uses electrical equivalent network and computational fluid dynamic software (FLUENT) for modeling our microfluidic arrays not only to provide understanding of the physical phenomena observed from the experimental results, but also to offer the optimized geometry of the microfluidic array necessary for uniform flow distribution. The Micro Particle Imaging Velocimetry (MicroPIV) result is also given.
机译:为了确保能够提供优异质量,通用性和降低遗传研究成本的微阵列,需要开发使用高产率的酸不稳定的受保护的单体而不是光不稳定的基团保护的单体的合成方法。通过使用溶液光化学产生的光生酸是合适的酸脱保护剂之一。但是,使用溶液光化学法要求反应位点彼此隔离,以防止试剂在光解反应过程中扩散。为了能够在芯片上进行液相平行合成,我们提出了三种不同类型的设备:具有隔离壁和机械密封的微孔,具有表面张力隔离的微孔以及具有隔离壁的气密密封微流体设备。我们将表面微加工技术和块体微加工技术应用于这些设备的制造。由于化学反应速率和杂交速率的显着提高,微流体装置比微孔装置具有更多的遗传研究潜力。本文还针对各种制造问题提出了解决方案,并讨论了简化和加快制造过程的技术应用。还给出了从微孔和微流控阵列芯片的失配检测得到的有效保真度。本文还使用等效电子网络和计算流体动力学软件(FLUENT)对我们的微流控阵列进行建模,不仅提供了对从实验结果中观察到的物理现象的理解,而且还为均匀流动所必需的微流控阵列提供了优化的几何形状分配。还给出了微粒成像测速(MicroPIV)结果。

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