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Electro-hydrodynamic printing using hole-type electrode

机译:使用孔型电极的电液动力印刷

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Additive direct writing has many advantages compared with the subtractive conventional MEMS fabrication process. With its reduced manufacturing steps, the processing time is shortened and the overall process costs less. Also, the process is non-toxic and its flexibility in the manufacturing gives the capability to alter printing patterns promptly. Among many direct writing methods, electro-hydrodynamic (EHD) printing is also receiving a huge interest due to its capability of high resolution printing. However, there are still many issues to be resolved for the high volume fabrication process, such as the realization of multi-nozzle drop on demand system, etc. In this work, EHD printing was demonstrated using a hole-type electrode with stainless steel nozzle to which the liquid is supplied from a constant pressure reservoir. With varying square voltage pulses between the nozzle and the electrode, three types of jet emission modes are observed; continuous mode, fine jet pulsating mode and droplet pulsating mode. Among these modes, the droplet pulsating mode and the fine jet pulsating mode were optimized to print relatively large patterns and high resolution patterns, respectively. In addition, to demonstrate near field printing for high position accuracy, EHD printing was carried out with a nozzle penetrating the hole-type electrode, so that the distance between nozzle tip and the substrate could be shortened.
机译:与减法常规MEMS制造工艺相比,加法直接写入具有许多优势。通过减少制造步骤,缩短了处理时间,降低了总体处理成本。而且,该方法是无毒的,并且其在制造中的灵活性使得能够迅速改变印刷图案。在许多直接书写方法中,电动流体动力学(EHD)打印由于其高分辨率打印的能力而也引起了极大的兴趣。但是,大批量制造过程中仍有许多问题需要解决,例如实现多喷嘴按需滴注系统等。在这项工作中,使用带不锈钢喷嘴的孔型电极演示了EHD打印从恒压容器向其供应液体。在喷嘴和电极之间的方电压脉冲变化的情况下,观察到三种类型的射流发射模式。连续模式,精细喷射脉动模式和液滴脉动模式。在这些模式中,对液滴脉动模式和精细喷射脉动模式进行了优化,以分别打印较大的图案和高分辨率的图案。另外,为了证明近场打印具有高的位置精度,使用穿透孔型电极的喷嘴进行EHD打印,从而可以缩短喷嘴尖端与基板之间的距离。

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