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Splitting and switching of microfluid segments in closed channels for chemical operations in the segment-on-demand technology

机译:按需段技术中用于化学操作的封闭通道中微流段的分离和切换

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摘要

Basic functional units and a preparation technology have been developed for the investigation of segment operations in larger sequences of droplets. A high reproducibility of segment operations with branched microchannel structures (0.3 mm) even up to high flow rates was achieved. A switching of segments was realized by an electrical actuation without galvanic contact. The applied voltages has been in the range between 0.1 and 1.2 kV at distances between electrodes and the fluid channel of about 100 μm resulting in electrical fields in the range of about 0.2-2.4 MV/m. The switching effect cannot be explained by a poor electrowetting or a pure electrostatic effect on the fluid segments, but is caused obviously by a combination of them. A controlled switching with frequencies up to about 5 Hz was realized by a fast optical in situ measurement and a feed-back loop between the optical measurement channel and the electro actuator. After optical detection, segments can be directed individually to one of two outlet ports. The distance between segments in the both outlet channels is directly determined by the order of switching pulses. So, it is possible to realize an automated sorting of microfluid segments and to generate arbitrarily defined microfluid segment patterns. The technique will be applied for the handling of small cell ensembles and single cells for bioassays in screenings at the nanoliter level and for combinatorial screenings in chemistry.
机译:已经开发出基本的功能单元和制备技术,用于研究较大液滴序列中的片段操作。使用分支微通道结构(0.3毫米)甚至在高流速下也能实现段操作的高重现性。段的切换是通过无电接触的电驱动实现的。在电极与流体通道之间的距离为约100μm时,所施加的电压在0.1kV与1.2kV之间的范围内,导致电场在约0.2-2.4MV / m的范围内。开关效应不能用对流体段的不良电润湿或纯静电效应来解释,而是显然是由它们的组合引起的。通过快速的光学原位测量和光学测量通道与电动执行器之间的反馈回路,可以实现频率高达约5 Hz的受控开关。在进行光学检测之后,可以将分段分别定向到两个出口之一。两个出口通道中段之间的距离直接由切换脉冲的顺序确定。因此,有可能实现对微流体片段的自动分选并生成任意定义的微流体片段模式。该技术将用于处理小细胞集合体和单细胞,用于纳升水平筛选中的生物测定以及化学中的组合筛选。

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