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Fabrication of inorganic-organic hybrid polymer micro and nanostructures for fluidic applications

机译:用于流体应用的无机-有机杂化聚合物微结构和纳米结构的制备

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摘要

Microfluidics is a rapidly developing branch of microtechnology with applications in chemistry, biology, medicine and other sciences. One major trend in fluidics has been the miniaturization of analytical devices. Miniaturization improves performance, mainly speed and sensitivity, and also reduces the required sample volumes. Initially microfluidic devices were fabricated from silicon and glass using microfabrication methods borrowed from the integrated circuits industry. But polymers are gaining more and more attention due to their simple processing and potential of being so inexpensive as to be disposable. Many different polymer materials have been used, including polydimethylsiloxane (PDMS), polymethyl methacrylate (PMMA) and epoxy-based SU-8. Although these polymers have proven to be useful in some applications, there is still need for easily processable materials that would have the chemical tolerance and favorable surface properties for analytical applications. One such major issue is avoidance of analyte adsorption on chip walls in separation devices. In this thesis, a new materials class, ORMOCER©s, are introduced into microfludics. Ormocers are inorganic-organic hybrid polymers that combine the beneficial properties of organic materials and glass/ceramics. They can be cured by using UV-light, like negative photoresists, and their surface properties resemble that of glass. New UV-embossing techniques have been conceived and tested for Ormocer patterning in this thesis. Combined with a novel self-adhesive bonding process, devices made of 100% Ormocer have been realized for the first time. Fabrication of Ormocer structures by embossing and bonding is fast and simple compared with many other polymers, and significantly easier than silicon or glass processing. Due to its unique chemical composition, nanopores can be formed in Ormocer by etching the organic sidegroups away in oxygen plasma. The microchips produced in Ormocer have been used in applications like capillary electrophoresis (CE), integrated capillary electrophoresis and electrospray ionization (ESI), and as substrates for surface assisted laser desorption ionization (SALDI). Ormocer has proven to be highly successful in these analytical applications. Especially intriguing is the excellent CE separation performance for peptides and proteins which is explained to be due to inherent resistance of Ormocer against analyte adsorption.
机译:微流体技术是微技术的一个快速发展的分支,应用于化学,生物学,医学和其他科学领域。流体技术的一个主要趋势是分析设备的小型化。小型化可以提高性能,主要是提高速度和灵敏度,还可以减少所需的样品量。最初,微流体装置是使用集成电路工业中借用的微加工方法由硅和玻璃制成的。但是聚合物由于其简单的加工方法以及价格低廉以至可抛弃的潜力而受到越来越多的关注。已经使用了许多不同的聚合物材料,包括聚二甲基硅氧烷(PDMS),聚甲基丙烯酸甲酯(PMMA)和环氧基SU-8。尽管已证明这些聚合物在某些应用中是有用的,但仍需要易于加工的材料,该材料应具有化学耐受性和对分析应用有利的表面性能。这样的主要问题之一是避免分析物吸附在分离装置的芯片壁上。本文将一种新的材料类ORMOCER©s引入微流体。 Ormocers是结合了有机材料和玻璃/陶瓷的有益特性的无机-有机杂化聚合物。它们可以像负性光致抗蚀剂一样通过使用紫外线来固化,并且它们的表面性质类似于玻璃。本文针对Ormocer图案构想并测试了新的UV压印技术。结合新颖的自粘结合工艺,首次实现了由100%Ormocer制成的设备。与许多其他聚合物相比,通过压印和粘合来制造Ormocer结构是快速,简单的,并且比硅或玻璃加工要容易得多。由于其独特的化学组成,可以通过在氧等离子体中将有机侧基刻蚀掉而在Ormocer中形成纳米孔。 Ormocer生产的微芯片已用于毛细管电泳(CE),集成毛细管电泳和电喷雾电离(ESI)等应用,并用作表面辅助激光解吸电离(SALDI)的基材。 Ormocer已被证明在这些分析应用中非常成功。多肽和蛋白质的出色CE分离性能尤其令人着迷,这可以解释为归因于Ormocer固有的抗分析物吸附能力。

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    Aura Susanna;

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  • 年度 2011
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