Bhargava Krisna C, Thompson Bryant, Tembhekar Anoop, Malmstadt Noah
Mork Family Department of Chemical Engineering and Materials Science, University of Southern California, Los Angeles, CA 90089, USA.
Department of Biomedical Engineering, University of Southern California, Los Angeles, CA 90089, USA.
Micromachines (Basel). 2016 Jan 18;7(1):11. doi: 10.3390/mi7010011.
A discrete microfluidic element with integrated thermal sensor was fabricated and demonstrated as an effective probe for process monitoring and prototyping. Elements were constructed using stereolithography and market-available glass-bodied thermistors within the modular, standardized framework of previous discrete microfluidic elements demonstrated in the literature. Flow rate-dependent response due to sensor self-heating and microchannel heating and cooling was characterized and shown to be linear in typical laboratory conditions. An acid-base neutralization reaction was performed in a continuous flow setting to demonstrate applicability in process management: the ratio of solution flow rates was varied to locate the equivalence point in a titration, closely matching expected results. This element potentially enables complex, three-dimensional microfluidic architectures with real-time temperature feedback and flow rate sensing, without application specificity or restriction to planar channel routing formats.
制造了一种集成热传感器的离散微流控元件,并证明其是用于过程监测和原型制作的有效探针。元件是在文献中展示的先前离散微流控元件的模块化、标准化框架内,使用立体光刻技术和市售玻璃体温敏电阻构建的。对由于传感器自热以及微通道加热和冷却导致的与流速相关的响应进行了表征,并表明在典型实验室条件下呈线性。在连续流动设置中进行了酸碱中和反应,以证明其在过程管理中的适用性:改变溶液流速比以确定滴定中的等当点,结果与预期结果非常匹配。该元件有可能实现具有实时温度反馈和流速传感功能的复杂三维微流控架构,而不受应用特异性或平面通道布线格式的限制。