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Electrokinetic pumping and spraying at micro/nano level.

机译:在微米/纳米水平上进行电动泵送和喷涂。

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This thesis addresses electrokinetic phenomena at micro/nano level for potential microfluidic applications. Two kinds of electrokinetic objects: electroosmosis and electrospray under both DC and AC conditions have been explored and exploited.; (1) Nonlinear AC electrokinetic flow has been observed based on electric field induced mobile charges at the interfaces of fluid/electrode. Polarization of the electrodes by charge transfer from the electrode or the bulk is used to improve a tangential Maxwell force and a surface flow along the electrodes. A prototype chip made of in-house fabricated microelectrodes is designed to study AC EO phenomena for pumping and mixing.; (2) Both high-pressure and high flowrate electrokinetic micropumps have been fabricated. Electroosmosis flow model within microchannels is analyzed and verified experimentally. Thermodynamic efficiency analysis is carried out which shows the optimum efficiency can be achieved by matching double layer thickness to the channel pore size. Applications towards micro total analysis systems are also demonstrated.; (3) New deformation/fission phenomena have been reported for micro-drops driven by an AC electric field at their resonant frequencies. Maxwell force can be enhanced when AC frequencies are comparable to both the drop resonant frequency and the inverse charge relaxation time of the double layer. High throughput electrospray is achieved under resonant conditions. Additionally, DC electrospray has been exploited as a novel coating method to deposit carbon nanotubes/Nafion suspensions upon target electrodes. The deposition is achieved by using electrohydrodynamic atomization to eject monodispersed droplets into the gaseous phase followed by directing them to the target electrodes alone electric field. Electrochemical study of the deposited layer shows its advantage over conventional coating methods.
机译:本论文针对潜在的微流体应用解决了微/纳米级的电动现象。已经研究和开发了两种电动物体:在直流和交流条件下的电渗和电喷雾。 (1)基于电场在流体/电极界面处感应的移动电荷,已经观察到非线性交流电动势。通过从电极或块体进行电荷转移来使电极极化,以改善切向麦克斯韦力和沿电极的表面流。设计了由内部制造的微电极制成的原型芯片,用于研究交流电EO现象以进行泵送和混合。 (2)已经制造了高压和高流量电动微型泵。对微通道内的电渗流模型进行了分析和实验验证。进行热力学效率分析,结果表明可以通过使双层厚度与通道孔径匹配来实现最佳效率。还展示了在微量总量分析系统中的应用。 (3)据报道,由交流电场驱动的微滴以其共振频率出现了新的变形/裂变现象。当交流频率与双层的下降共振频率和反向电荷弛豫时间相当时,可以提高麦克斯韦力。在共振条件下实现了高通量电喷雾。另外,直流电喷雾已被用作一种新颖的涂覆方法,以在目标电极上沉积碳纳米管/ Nafion悬浮液。通过使用电动流体雾化将单分散的液滴喷射到气相中,然后将它们直接引导到目标电极上的电场来实现沉积。沉积层的电化学研究表明,它比常规涂覆方法具有优势。

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