Title :
Osmotic actuation for microfluidic components in point-of-care applications
Author :
Yu-Chih Chen ; Ingram, Pier ; Xia Lou ; Euisik Yoon
Author_Institution :
Dept. of EECS, Univ. of Michigan, Ann Arbor, MI, USA
Abstract :
We present a novel design of micropumps and valves driven by osmotic force for point-of-care applications. Although there have been significant progresses in microfluidic components and control devices such as fluidic diodes, switches, resonators and digital-to-analog converters, the ultimate power source still depends on bulky off-chip components, which are expensive and cannot be easily miniaturized. For point-of-care applications, it is critical to integrate all the components in a compact size at low cost. In this work, we report two key active components actuated by osmotic mechanism for total integrated microfluidic system. For the proof of concept, we have demonstrated valve actuation, which can maintain stable ON/OFF switching operations under 125 kPa back pressure. We have also implemented an osmotic pump, which can pump a high flow rate over 30 μL/min for longer than 30 minutes. The experimental data demonstrates the possibility and potential of applying osmotic actuation in point-of-care disposable microfluidics.
Keywords :
bioMEMS; digital-analogue conversion; microfluidics; micropumps; microvalves; osmosis; digital-to-analog converters; fluidic diodes; micropumps; microvalves; on-off switching operations; osmotic force; osmotic mechanism; osmotic pump; point-of-care disposable microfluidics; pressure 125 kPa; resonators; switches; time 30 min; total integrated microfluidic system; ultimate power source; Absorption; Microfluidics; Polymers; Reservoirs; Sugar; Switches; Valves;
Conference_Titel :
Micro Electro Mechanical Systems (MEMS), 2013 IEEE 26th International Conference on
Conference_Location :
Taipei
Print_ISBN :
978-1-4673-5654-1
DOI :
10.1109/MEMSYS.2013.6474448