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利用介电电泳平台进行的低电压皮升液滴操控。

Low voltage picoliter droplet manipulation utilizing electrowetting-on-dielectric platforms.

作者信息

Lin Yan-You, Welch Erin R F, Fair Richard B

机构信息

Department of Electrical and Computer Engineering, Duke University, Durham, NC 27708, USA.

出版信息

Sens Actuators B Chem. 2012 Oct;173:338-345. doi: 10.1016/j.snb.2012.07.022.

Abstract

Picoliter droplets actuated on an electrowetting-on-dielectric (EWD) actuator are demonstrated. In this study, the physical scaling of electrodes for 33 μm and 21 μm EWD devices resulted in droplets of 12 pl and 5 pl being dispensed respectively in conjunction with 3 μm SU8 gaskets. The stacked multi-layer insulators in the actuators consisted of 200 nm tantalum pentoxide (TaO) and 200 nm parylene C films deposited and coated with 70 nm of CYTOP. The voltages for dispensing droplets on chips without any external pressure sources are 17.1 V and 22 V for these two sets of devices. A 12 pl droplet can be split into two 6 pl daughter droplets at 18.7 V with 33 μm electrode devices. Droplet manipulation is also demonstrated with paramagnetic beads and buffer solutions with proteins. In addition, electrodes with interlocking protrusions and special featured reservoir gasket are designed to facilitate droplet dispensing on these scaled EWD devices. In order to improve sealing of the two-piece sandwich EWD structure, a soft material, Norland Optical Adhesive (NOA), was coated on the top plate along with pressure on top. We demonstrate that based on fundamental theories and experiments, the dimensional scaling of EWD devices has not yet met a limitation as long as the EWD device can be sealed well.

摘要

展示了在介电电泳(EWD)致动器上驱动的皮升液滴。在本研究中,对33μm和21μm EWD器件的电极进行物理缩放,结合3μm的SU8垫圈,分别产生了12皮升和5皮升的液滴。致动器中的堆叠多层绝缘体由200nm的五氧化二钽(TaO)和200nm的聚对二甲苯C膜组成,并涂覆有70nm的CYTOP。对于这两组器件,在没有任何外部压力源的芯片上分配液滴所需的电压分别为17.1V和22V。使用33μm电极器件时,在18.7V电压下,一个12皮升的液滴可以分裂成两个6皮升的子液滴。还展示了使用顺磁珠和含蛋白质的缓冲溶液进行液滴操纵。此外,设计了具有互锁突起的电极和具有特殊特征的储液器垫圈,以促进在这些缩放的EWD器件上分配液滴。为了改善两件式夹心EWD结构的密封性,在顶板上涂覆了一种软材料——诺兰德光学胶(NOA),并在顶部施加压力。我们证明,基于基础理论和实验,只要EWD器件能够良好密封,EWD器件的尺寸缩放尚未达到极限。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2c26/3613134/673c38ad316d/nihms394155f1.jpg

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