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Sculpturing wafer-scale nanofluidic devices for DNA single molecule analysis

机译:雕塑圆片规模奈米流体设备DNA单分子分析

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We present micro- and nanofluidic devices with 3D structures and nanochannels with multiple depths for the analysis of single molecules of DNA. Interfacing the nanochannels with graded and 3D inlets allows the improvement of the flow and controls not only the translocation speed of the DNA but also its conformation inside the nanochannels. The complex, multilevel, multiscale fluidic circuits are patterned in a simple, two-minute imprinting step. The stamp, the key of the technology, is directly milled by focused ion beam, which allows patterning nanochannels with different cross sections and depths, together with 3D transient inlets, all at once. Having such a variety of structures integrated in the same sample allows studying, optimizing and directly comparing their effect on the DNA flow. Here, DNA translocation is studied in long (160 mu m) and short (5-40 mu m) nanochannels. We study the homogeneity of the stretched molecules in long, meander nanochannels made with this technology. In addition, we analyze the effect of the different types of inlet structures interfacing short nanochannels. We observe pre-stretching and an optimal flow, and no hairpin formation, when the inlets have gradually decreasing widths and depths. In contrast, when the nanochannels are faced with an abrupt transition, we observe clogging and hairpin formation. In addition, 3D inlets strongly decrease the DNA molecules' speed before they enter the nanochannels, and help capturing more DNA molecules. The robustness and versatility of this technology and DNA testing results evidence the potential of imprinted devices in biomedical applications as low cost, disposable lab-on-a-chip devices.
机译:我们现在的微奈米流体设备与3 d与多个深度结构和纳米通道分析单个DNA分子。接口与分级和3 d纳米通道入口允许流和的改善不仅控制的移位速度DNA,而且它的内部构造纳米通道。射流电路在一个简单的图案,两分钟的印记的一步。技术,由集中离子直接研磨梁,它允许模式纳米通道不同的横截面和深度,在一起三维瞬态水湾,一次。这样一个集成的各种结构相同的示例允许研究,优化和直接比较它们对DNA的影响流。这里,DNA易位研究了长(160μm)和短期(有些μm)纳米通道。研究拉伸分子的同质性在长期,河曲纳米通道技术。不同类型的入口结构连接短纳米通道。预拉伸和最优流,没有逐渐形成发夹,当水湾减少宽度和深度。面对突然纳米通道过渡,我们观察阻塞和发夹形成。他们之前减少DNA分子的速度进入纳米通道,帮助获取更多DNA分子。这种技术和DNA测试结果的证据印在生物医学设备的潜力应用程序作为低成本的,一次性的芯片实验室设备。

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