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Planar microfluidics: Toward large-scale integration of channels, pumps, valves, and fluid mixers in microelectromechanical systems (MEMS).

机译:平面微流控:在微机电系统(MEMS)中实现通道,泵,阀和流体混合器的大规模集成。

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A cost effective, manufacturable technology for the large scale integration of microfluidic processing components would find wide application in drug delivery, drug development, micro-biology, genetics, printing and associated fields. This dissertation outlines a design paradigm which allows for such large scale integration using components which rely solely upon planar laminar flows. Concepts, analysis and prototypes are developed for components capable of handling picoliter, nanoliter and microliter volumes, including micro-channels, micro-pumps, micro-valves, and micro-mixing/reaction chambers. Specifically, the author demonstrates: fabrication of complex channel arrays in a silicon wafer; fabrication of electrical components on a quartz substrate; a technique for bonding a quartz wafer with electrical components to a silicon wafer using a patterned bonding layer; integration of electronic components onto the inside of fluidic channels; packaging of a fluidic device allowing for more than sixty electrical connections and more than ten fluidic connections; visualization of flow within a microfluidic device; the creation of thermally generated bubbles within closed fluid chambers; the “gettering” of dissolved gasses from fluid to form stable gas bubbles using thermally generated bubbles; the fabrication of released structures which move within plane of the device using Silicon-on-Insulator (SOI) wafers; an operational mechanical check valve which controls the motion of fluid within the plane of the device; the use of thermally generated bubbles to move mechanical structures within the plane of the device; a bi-stable actuation cycle which uses bubbles to move a mechanical structure in excess of sixty micrometers and which does not require that bubbles be collapsed to complete the actuation cycle; a bi-stable actuated mechanical micro-valve which controls the motion of fluid within the plane of the substrate; an operational thermally driven bubble piston chamber which may be incorporated into positive displacement bubble-pumps; a pumping effect caused by steady operation of a thermally generated bubble; and analysis, numerical simulations, and prototypes suggesting a method for mixing fluids in a planar laminar environment using chaotic advection.
机译:用于微流控处理组件的大规模集成的具有成本效益的可制造技术将在药物输送,药物开发,微生物学,遗传学,印刷和相关领域中得到广泛应用。本文概述了一种设计范例,该范例允许使用仅依赖于平面层流的组件进行如此大规模的集成。为能够处理微微升,纳升和微升体积的组件开发了概念,分析和原型,包括微通道,微泵,微阀和微混合/反应腔。具体来说,作者演示了:在硅晶片中制造复杂的通道阵列;在石英基板上制造电子元件;使用图案化的结合层将具有电子部件的石英晶片结合到硅晶片的技术;将电子组件集成到流体通道内部;流体装置的包装,可以进行六十多个电气连接和十个以上流体连接;可视化微流体设备内的流动;在封闭的流体室内产生热产生的气泡;使用热产生的气泡从流体中“吸气”溶解的气体以形成稳定的气泡;使用绝缘体上硅(SOI)晶片制造在器件平面内移动的释放结构;可操作的机械止回阀,用于控制设备平面内的流体运动;使用热产生的气泡在装置平面内移动机械结构;双稳态致动周期,它使用气泡使机械结构移动超过60微米,并且不需要使气泡塌陷即可完成致动周期;双稳态致动机械微型阀,用于控制流体在基板平面内的运动;一个可运行的热驱动气泡活塞室,可将其引入容积式气泡泵中;由热产生的气泡的稳定运行引起的泵送作用;分析,数值模拟和原型提出了一种利用混沌对流在平面层流环境中混合流体的方法。

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