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Femtoliter nanofluidic valve utilizing glass deformation

机译:利用玻璃变形的飞钻纳米流体瓣膜

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In the field of micro/nanofluidics, the channel open/close valves are among the most important technologies for switching and partitioning actions and integration of various operations into fluidic circuits. While several types of valves have been developed in microfluidics, few are capable in nanofluidics. In this study, we proposed a femtoliter (fL) volume nanochannel open/close valve fabricated in glass substrates. The valve consists of a shallow, circular and stepped-bottom valve chamber connected to nanochannels and an actuator. Even with tiny deformation occurring at the nanolevel in glass, an open/closed state of a nanochannel (10-1000 nm) can be achieved. We designed a fL-valve based on an analytical material deformation model, and developed a valve fabrication process. We then verified the open/closed state of the valve using a 308 fL-valve chamber with a four-stepped nanostructure fitting an arc-shape of deflected glass, confirmed its stability and durability over 50 open/close operations, and succeeded in stopping/flowing an aqueous solution at 209 fL s(-1) under a 100 kPa pressure in a 900 nm nanochannel with a fast response of similar to 0.65 s. A leak flow from the closed valve was sufficiently small even at a 490 kPa pressure-driven flow. Since the developed fL-valve can be applied to various nanofluidic devices made of glass and other rigid materials such as plastic, it is expected that this work will contribute significantly to the development of novel integrated micro/nanofluidics chemical systems for use in various applications, such as single cell/single molecule analysis.
机译:在微/纳米流体的领域中,通道开口/关闭阀门是切换和分区行动和各种操作的整合到流体电路中的最重要技术之一。虽然在微流体中开发了几种类型的阀门,但很少有能力在纳米流体中。在这项研究中,我们提出了一种在玻璃基板中制造的Femtoliter(FL)体积纳米通道开/关闭阀。阀门由连接到纳米通道和致动器的浅,圆形和底部阀室组成。即使在玻璃中的纳米螺纹处发生的微小变形,也可以实现纳米通道(10-1000nm)的开口/关闭状态。我们设计了一种基于分析材料变形模型的氟阀,并开发了阀门制造工艺。然后,我们使用308张阀室验证了阀门的开口/闭合状态,其中308级纳米结构配合配合偏转玻璃的弧形,确认其稳定性和耐用性超过50个开放/关闭操作,并成功停止/在100kPa压力下在900nm纳米烷基中以100kPa的压力流动的水溶液在900nm纳米中,快速反应类似于0.65秒。即使在490kPa压力驱动的流动下,闭孔的泄漏流量足够小。由于开发的FL-阀可以应用于由玻璃和其他刚性材料制成的各种纳米流体装置,因此预计这项工作将显着促进新型集成的微/纳米流体化学系统,用于各种应用,如单细胞/单分子分析。

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