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Microfabricated filters for microfluidic analytical systems

机译:用于微流体分析系统的微滤器

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Solvent and reagent filters were micromachined into quartz wafers using deep reactive ion etching to create a network of intersecting 1.5 x 10 mu m channels, When placed at the bottom of reservoirs with a side exit, this channel network behaved as a lateral percolation filter composed of an array of cubelike structures one layer deep. Flow through these filters was driven by electroosmotic flow (EOF). Silanol groups at the walls of channels in the network provided the requisite charge to trigger EOF when voltage was applied laterally to the filter. Adsorption of cationic proteins in this silanol-rich matrix was controlled by the application of a polyacrylamide coating prepared by bonding N-hydroxysuccinimide (NHS)activated poly(acrylic acid) to (gamma-aminopropyl)silane-derivatized filters. Subsequent reaction of residual NHS groups in the coating with 2-(2-aminoethoxy) ethanol provided channels of low charge density and adsorptivity. These lateral percolation filters were shown to be efficacious in filtering solvents containing a variety of particulate materials, ranging from dust to cells. [References: 28]
机译:使用深度反应离子刻蚀将溶剂和试剂过滤器微加工成石英晶片,以形成相交的1.5 x 10μm通道网络,当放置在带有底部出口的储罐底部时,该通道网络表现为横向渗滤过滤器,由一层深一层的立方体结构的数组。通过这些过滤器的流量是由电渗流(EOF)驱动的。当向过滤器侧面施加电压时,网络通道壁上的硅烷醇基团提供了触发EOF所需的电荷。通过应用聚丙烯酰胺涂层来控制阳离子蛋白在这种富含硅烷醇的基质中的吸附,该涂层是通过将N-羟基琥珀酰亚胺(NHS)活化的聚丙烯酸与(γ-氨基丙基)硅烷衍生的滤膜结合而制备的。涂层中残留的NHS基团随后与2-(2-氨基乙氧基)乙醇反应,提供了低电荷密度和吸附性的通道。这些横向渗透过滤器显示出对过滤包含多种颗粒物质(从灰尘到细胞)的溶剂有效。 [参考:28]

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