Title :
Reconfigurable Prototyping Microfluidic Platform for DEP Manipulation and Capacitive Sensing
Author :
Miled, Amine ; Auclair, Benoit ; Srasra, Anis ; Sawan, Mohamad
Author_Institution :
Electr. & Comput. Eng. Dept., Laval Univ., Québec, QC, Canada
Abstract :
In this paper, we present a new rapid prototyping platform dedicated to dielectrophoretic microfluidic manipulation and capacitive cell sensing. The proposed platform offers a reconfigurable design including 4 independently programmable output channels to be distributed across 64 electrodes. Although its range of frequency covers up to 3.4 MHz, signal amplitude accuracy ( +/-10%) was demonstrated for frequencies up to 1 MHz and channel-to-channel phase shift setting was stable up to 1.5 MHz. A test of maximum resistive load showed a 10% attenuation of a 12 V peak-to-peak signal with a 22 Ω load. The platform has an advanced capacitive sensor to measure capacitance variation between in-channel electrodes with a sampling frequency up to 5 kH z. Experimental data of capacitive sensor showed a sensitivity of 100 fF. The sensor can be extended to 4 parallel measurements with lower frequency. We also present a new assembly technique for reusable microfluidic chip based on anisotropic adhesive conductive film, epoxy and PDMS. The proposed platform provides a wide range of control signals depending on the type of manipulation as sine, rectangular or square wave. The frequency range is extendible up to 3.4 MHz, in addition to a programmable phase shift circuit with a minimum phase step of 3.6 ° for each signal.
Keywords :
bioMEMS; biomedical electrodes; capacitance; capacitance measurement; capacitive sensors; electrophoresis; lab-on-a-chip; microfluidics; microsensors; self-assembly; DEP manipulation; PDMS; anisotropic adhesive conductive film; assembly technique; capacitive cell sensing; channel-to-channel phase shift setting; dielectrophoretic microfluidic manipulation; epoxy; frequency 1.5 MHz; frequency 3.4 MHz; in-channel electrodes; programmable phase shift circuit; rapid prototyping platform; reconfigurable prototyping microfluidic platform; rectangular wave; resistance 22 ohm; sine wave; square wave; voltage 12 V; Capacitance; Capacitive sensors; Computer architecture; Electrodes; Field programmable gate arrays; Glass; Capacitive sensors; dielectrophoresis; microfluidics; prototypes;
Journal_Title :
Biomedical Circuits and Systems, IEEE Transactions on
DOI :
10.1109/TBCAS.2015.2414452