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Femtoliter Droplet Handling in Nanofluidic Channels: A Laplace Nanovalve

机译:毫微微流体通道中的Femtoliter液滴处理:拉普拉斯纳米阀

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摘要

Analytical technologies of ultrasmall volume liquid, in particular femtoliter to attoliter liquid, is essential for single-cell and single-molecule analysis, which is becoming highly important in biology and medical diagnosis. Nanofluidic chips will be a powerful tool to realize chemical processes for such a small volume sample. However, a technical challenge exists in fluidic control, which is femtoliter to attoliter liquid generation in air and handling for further chemical analysis. Integrating mechanical valves fabricated by MEMS (micro-electric mechanical systems) technology into nanofluidic channels is difficult. Here, we propose a nonmechanical valve, which is a Laplace nanovalve. For this purpose, a nanopillar array was embedded in a nanochannel using a two-step electron beam lithography and dry-etching process. The nanostructure allowed precise wettability patterning with a resolution below 100 nm, which was difficult by photochemical wettability patterning due to the optical diffraction. The basic principle of the Laplace nanovalve was verified, and a 1.7 fL droplet (water in air) was successfully generated and handled for the first time.
机译:超小体积液体的分析技术,特别是飞升至原子升的液体,对于单细胞和单分子分析至关重要,而分析技术在生物学和医学诊断中正变得至关重要。纳米流体芯片将是实现如此少量样品化学过程的强大工具。但是,在流体控制中存在技术挑战,从空气中的毫微微升升到升升至液体的产生以及进一步化学分析的处理。很难将由MEMS(微机电系统)技术制造的机械阀集成到纳米流体通道中。在这里,我们提出了一种非机械阀,这是一个拉普拉斯纳米阀。为此,使用两步电子束光刻和干法蚀刻工艺将纳米柱阵列嵌入纳米通道中。纳米结构允许以低于100 nm的分辨率进行精确的可湿性图案化,由于光学衍射,光化学可湿性图案化难以实现。验证了Laplace纳米阀的基本原理,并首次成功产生并处理了1.7 fL的液滴(空气中的水)。

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