标题: 可挠式高分子基板应用于数位流体平台之研究
A digital microfluidic platform on flexible polymer films
作者: 杨涵评
Hanping Yang
徐文祥
范士冈
Wensyang Hsu
Shih-Kang Fan
机械工程学系
关键字: 电湿润现象;模组化数位流体平台;可挠式基板;数位流体介面;非对称电湿润现象;electrowetting;modularized digital microfluidic platform;flexible substrate;digital microfluidic interconnection;asymmetric electrowetting
公开日期: 2007
摘要: 数位流体平台具有结构简单、没有可动零件,以及可程式操控等好处,已广泛地应用在生医检测上。有别于先前皆采用硬式的基板制作数位流体元件,本研究提出在高分子基板上,开发可挠式的数位流体元件,不但具有原来的优点,还具有低价、可挠,和外形多样的好处。首先,透过材料及制程的评估中,了解基板与材料的特性,并进行平面元件的倾斜测试与理论分析,确认可驱动液珠在曲面上移动的能力。其次,这里对一种新式的非对称电湿润驱动原理进行探讨,利用液珠在正负相反的电场下,有不同的接触角的特性,驱动液珠在方形共平面电极上来回振荡运动,并利用此一特性,提出一种凸字形的非对称电极设计,成功地在开放表面上,以振幅100 Vp频率9 Hz的方波,驱动1.0 ul液珠进行单向23.6 mm/s的移动。最后,本研究利用可挠基板特性,提出一种可重复使用,以及随插即用的界面设计,可应用在三维数位流体平台的模组化,使液珠可以在模组间互相传递。经由适当间隙控制和界面电极设计,实验结果显示液珠可以顺利通过界面,并提出三种流体模组的设计,组合出三维环形流体平台,成功地展示模组化的流体平台,在120 VAC下驱动2.5 ul的液珠,在该平台以105.7 mm/s的速度移动。
Digital microfluidic platform has been widely used in the biomedical analysis due to its advantages of simple configuration, no moving parts, and programmable control. Different from previous studies on hard substrate, flexible polymer films are proposed to develop the digital microfluidic device. First, in feasibility study, material and fabrication procresses are evaluated. The device tests and analytical analysis are performed in tilted and flat conditions. Also, droplet transportation on curved surface is successfully demonstrated. Second, a new principle of droplet actuation, asymmetric electrowetting, is studied. Due to charge trapping of insulator at different polarities, droplet can be actuated to oscillate on square coplanar electrodes. By using this phenomenon, unidirectional pumping of 1.0 ul droplet with a speed up to 23.6 mm/s is successfully demonstrated on asymmetric coplanar electrodes when a 100 Vp and 9 Hz square wave is applied. At last, a reusable and plug-and-play fluidic interface is designed for droplet interconnection. In gap size investigation and fluidic interface tests, feasibility of droplet crossing the interface gap and pumping across the fluidic interface are validated. Three modularized components are designed for 3-D microfluidic ring. Finally, 2.5 ul droplet is successfully transported at a speed of 105.7 mm/s when 120 VAC is applied.
URI: http://140.113.39.130/cdrfb3/record/nctu/#GT009114807
http://hdl.handle.net/11536/48401
显示于类别:Thesis


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