Hayes Brandon, Smith Lawrence, Kabutz Heiko, Hayes Austin C, Whiting Gregory L, Jayaram Kaushik, MacCurdy Robert
Paul M. Rady Department of Mechanical Engineering, University of Colorado Boulder, Boulder, CO 80309, USA.
Micromachines (Basel). 2022 Sep 29;13(10):1634. doi: 10.3390/mi13101634.
Thermal bubble-driven micro-pumps are an upcoming actuation technology that can be directly integrated into micro/mesofluidic channels to displace fluid without any moving parts. These pumps consist of high power micro-resistors, which we term thermal micro-pump (TMP) resistors, that locally boil fluid at the resistor surface in microseconds creating a vapor bubble to perform mechanical work. Conventional fabrication approaches of thermal bubble-driven micro-pumps and associated microfluidics have utilized semiconductor micro-fabrication techniques requiring expensive tooling with long turn around times on the order of weeks to months. In this study, we present a low-cost approach to rapidly fabricate and test thermal bubble-driven micro-pumps with associated microfluidics utilizing commercial substrates (indium tin oxide, ITO, and fluorine doped tin oxide, FTO, coated glass) and tooling (laser cutter). The presented fabrication approach greatly reduces the turn around time from weeks/months for conventional micro-fabrication to a matter of hours/days allowing acceleration of thermal bubble-driven micro-pump research and development (R&D) learning cycles.
热气泡驱动的微泵是一种新兴的驱动技术,它可以直接集成到微/中尺度流体通道中,在没有任何运动部件的情况下实现流体的置换。这些泵由高功率微电阻器组成,我们将其称为热微泵(TMP)电阻器,它能在微秒内使电阻器表面的流体局部沸腾,产生蒸汽泡来执行机械功。热气泡驱动的微泵及相关微流体的传统制造方法采用半导体微制造技术,需要昂贵的工具,周转时间长达数周甚至数月。在本研究中,我们提出了一种低成本方法,利用商用基板(氧化铟锡,ITO,以及氟掺杂氧化锡,FTO,涂层玻璃)和工具(激光切割机)快速制造并测试带有相关微流体的热气泡驱动微泵。所提出的制造方法极大地缩短了周转时间,从传统微制造的数周/数月缩短至数小时/数天,从而加速了热气泡驱动微泵的研发(R&D)学习周期。