Mesoscopic Transport Phenomena Group, Department of Applied Physics, Eindhoven University of Technology, Den Dolech 2, Eindhoven, The Netherlands.
Lab Chip. 2010 Apr 21;10(8):1061-71. doi: 10.1039/b921759b. Epub 2010 Feb 3.
We provide guidelines for the design and operation of a planar digital nanodispensing system based on thermocapillary actuation. Thin metallic microheaters embedded within a chemically patterned glass substrate are electronically activated to generate and control 2D surface temperature distributions which either arrest or trigger liquid flow and droplet formation on demand. This flow control is a consequence of the variation of a liquid's surface tension with temperature, which is used to draw liquid toward cooler regions of the supporting substrate. A liquid sample consisting of several microliters is placed on a flat rectangular supply cell defined by chemical patterning. Thermocapillary switches are then activated to extract a slender fluid filament from the cell and to divide the filament into an array of droplets whose position and volume are digitally controlled. Experimental results for the power required to extract a filament and to divide it into two or more droplets as a function of geometric and operating parameters are in excellent agreement with hydrodynamic simulations. The capability to dispense ultralow volumes onto a 2D substrate extends the functionality of microfluidic devices based on thermocapillary actuation previously shown effective in routing and mixing nanoliter liquid samples on glass or silicon substrates.
我们提供了基于热毛细作用的平面数字纳滴分配系统的设计和操作指南。在化学图案化的玻璃基板内嵌入的薄金属微加热器通过电子方式激活,以生成和控制 2D 表面温度分布,从而按需停止或触发液体流动和液滴形成。这种流动控制是液体表面张力随温度变化的结果,利用该原理可以将液体吸引到支撑基板的较冷区域。由几微升组成的液体样品放置在通过化学图案化定义的平的矩形供应单元上。然后激活热毛细开关从单元中提取细长的流体细丝,并将细丝分成一系列液滴,这些液滴的位置和体积可以进行数字控制。作为几何和操作参数函数来提取细丝并将其分成两个或更多液滴所需的功率的实验结果与流体动力学模拟非常吻合。将超低体积分配到 2D 基板上的功能扩展了以前在玻璃或硅基板上展示了在路由和混合纳升级液体样品方面有效的基于热毛细作用的微流控器件的功能。