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Wirelessly powered electrowetting-on-dielectric (EWOD).

机译:无线供电的电介质上电润湿(EWOD)。

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摘要

Electrowetting-on-dielectric (EWOD) allows us to control wettability of droplets on a solid surface using electrical inputs and has been used in a wide range of applications including microfluidics, optical displays, lenses, and others. To date, however, they all have been powered in wired connections, limiting their further employments in hard-to-reach area particularly for implantable EWOD devices. One way to deal with the presented issue, a wireless EWOD system is studied and developed.;Due to compatibility of EWOD with AC (less than 1 kHz), a wireless powering as prompt method is achieved by a magnetic induction which essentially utilizes AC signal. The wireless powering with droplets actuation is verified in both using spool-type coils and planar coils. In the spool-type wireless EWOD study, the induced voltage at the receiver is much higher (~390 V) than typically required EWOD voltages (at least >50 V), which is sufficient to actuate the droplets. For reliable wireless EWOD actuation, the voltage induction has to be higher than the conventional EWOD while the current does not have to be necessarily high. Since the voltage induction is proportional to the transmission frequency, a higher voltage can be obtained by increasing the transmission frequency. However, if the transmission frequency is too high, the actuation of droplets might be limited. For an efficient EWOD actuation even at such a high transmission frequency, the system might need to be incorporated with an external demodulation circuit. This issue is addressed in the planar wireless EWOD system in which the powering devices and EWOD electrodes are integrated by standard photolithography process. To oscillate droplets while in lateral actuation irrespective of the coil type, amplitude modulation (AM) technique is applied to the wirelessly transmitted signal. Droplet oscillations are often introduced in many applications and beneficial to reduce the contact angle hysteresis. Eventually, by employing the compact wireless EWOD system into particle collecting and mini-boat propulsion, the unnecessary and cumbersome wire connections between the device components are significantly reduced, and more convenient and flexible EWOD operation is achieved with less constraint of the space and equipment.
机译:介电上电润湿(EWOD)使我们可以使用电输入来控制液滴在固体表面上的润湿性,并且已被广泛用于微流体,光学显示器,透镜等领域。但是,迄今为止,它们都已经通过有线连接供电,从而限制了它们在难以触及的领域中的进一步使用,尤其是对于植入式EWOD设备。解决该问题的一种方法是研究和开发无线EWOD系统。由于EWOD与AC兼容(小于1 kHz),因此通过电磁感应实现无线供电即提示方法,该方法基本上利用了AC信号。使用线轴型线圈和平面线圈均可验证带液滴驱动的无线供电。在线轴型无线EWOD研究中,接收器处的感应电压(〜390 V)比通常需要的EWOD电压(至少> 50 V)高得多,足以驱动液滴。为了可靠的无线EWOD致动,电压感应必须高于常规EWOD,而电流不必一定很高。由于电压感应与传输频率成正比,因此可以通过增加传输频率来获得更高的电压。但是,如果传输频率太高,可能会限制液滴的驱动。为了即使在如此高的传输频率下也能有效地驱动EWOD,系统可能需要与外部解调电路合并。在平面无线EWOD系统中解决了此问题,其中通过标准光刻工艺将供电设备和EWOD电极集成在一起。为了在横向致动时振荡液滴,而与线圈类型无关,将幅度调制(AM)技术应用于无线传输的信号。液滴振荡通常在许多应用中引入,并且有利于减小接触角滞后。最终,通过将紧凑的无线EWOD系统用于微粒收集和微型船推进中,可显着减少设备组件之间不必要和繁琐的电线连接,并实现了更方便,更灵活的EWOD操作,而对空间和设备的约束较少。

著录项

  • 作者

    Byun, Sang Hyun.;

  • 作者单位

    University of Pittsburgh.;

  • 授予单位 University of Pittsburgh.;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 122 p.
  • 总页数 122
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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