首页> 外文会议>Society of Photo-Optical Instrumentation Engineers Proceedings >Polymeric Microfluidic Devices for the Monitoring and Separation of Water-Borne Pathogens Utilizing Insulative Dielectrophoresis
【24h】

Polymeric Microfluidic Devices for the Monitoring and Separation of Water-Borne Pathogens Utilizing Insulative Dielectrophoresis

机译:用于监测和分离水性病原体的聚合物微流体装置利用绝缘介电泳的监测和分离

获取原文

摘要

We have successfully demonstrated selective trapping, concentration, and release of various biological organisms and inert beads by insulator-based dielectrophoresis within a polymeric microfluidic device. The microfluidic channels and internal features, in this case arrays of insulating posts, were initially created through standard wet-etch techniques in glass. This glass chip was then transformed into a nickel stamp through the process of electroplating. The resultant nickel stamp was then used as the replication tool to produce the polymeric devices through injection molding. The polymeric devices were made of Zeonor? 1060R, a polyolefin copolymer resin selected for its superior chemical resistance and optical properties. These devices were then optically aligned with another polymeric substrate that had been machined to form fluidic vias. These two polymeric substrates were then bonded together through thermal diffusion bonding. The sealed devices were utilized to selectively separate and concentrate a variety of biological pathogen simulants and organisms. These organisms include bacteria and spores that were selectively concentrated and released by simply applying D.C. voltages across the plastic replicates via platinum electrodes in inlet and outlet reservoirs. The dielectrophoretic response of the organisms is observed to be a function of the applied electric field and post size, geometry and spacing. Cells were selectively trapped against a background of labeled polystyrene beads and spores to demonstrate that samples of interest can be separated from a diverse background. We have implemented a methodology to determine the concentration factors obtained in these devices.
机译:通过聚合物微流体装置内的绝缘体基介电电泳成功地证明了各种生物体和惰性珠的选择性诱捕,浓缩和释放。在这种情况下,在这种情况下,通过玻璃中的标准湿法蚀刻技术创建微流体通道和内部特征。然后通过电镀的过程将该玻璃芯片转变为镍印章。然后将所得镍印模用作复制工具,以通过注塑制备聚合物装置。聚合物装置由Zeonor制成? 1060R,选择用于其优异的耐化学性和光学性质的聚烯烃共聚物树脂。然后将这些装置与已经加工以形成流体通孔的另一种聚合物基材对齐。然后通过热扩散键合将这两个聚合物基材一起粘合在一起。密封装置用于选择性地分离和浓缩各种生物病原体模拟剂和生物。这些生物包括通过简单地施加D.C的细菌和孢子,通过简单地施加在入口和出口储存器中通过铂电极通过铂电极复制。观察到生物体的介电泳响应是所施加的电场和柱尺寸,几何和间距的函数。细胞被选择性地捕获标记的聚苯乙烯珠粒和孢子的背景,以证明感兴趣的样本可以与不同的背景分离。我们已经实施了一种方法来确定这些装置中获得的集中因子。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号