Title :
Dielectrophoresis-Based Integrated Lab-on-Chip for Nano and Micro-Particles Manipulation and Capacitive Detection
Author :
Miled, M.A. ; Sawan, M.
Author_Institution :
Dept. off Electr. Eng., Ecole Polytech. de Montreal, Montreal, QC, Canada
fDate :
4/1/2012 12:00:00 AM
Abstract :
We present in this paper a new Lab-on-Chip (LoC) architecture for dielectrophoresis-based cell manipulation, detection, and capacitive measurement. The proposed LoC is built around a CMOS full-custom chip and a microfluidic structure. The CMOS chip is used to deliver all parameters required to control the dielectrophoresis (DEP) features such as frequency, phase, and amplitude of signals spread on in-channel electrodes of the LoC. It is integrated to the LoC and experimental results are related to micro and nano particles manipulation and detection in a microfluidic platform. The proposed microsystem includes an on-chip 27-bit frequency divider, a digital phase controller with a 3.6° phase shift resolution and a 2.5 V dynamic range. The sensing module is composed of a 3 × 3 capacitive sensor array with 10 fF per mV sensitivity, and a dynamic range of 1.5 V. The obtained results show an efficient nano and micro-particles (PC05N, PA04N and PS03N) separation based on frequency segregation with low voltages less than 1.7 V and a fully integrated and reconfigurable system.
Keywords :
CMOS digital integrated circuits; bioMEMS; biosensors; capacitive sensors; electrochemical electrodes; electrophoresis; frequency dividers; lab-on-a-chip; microelectrodes; microfluidics; microsensors; nanoparticles; sensor arrays; CMOS chip; capacitive detection; capacitive sensor array; cell manipulation; dielectrophoresis-based integrated lab-on-chip; digital phase controller; frequency; frequency segregation; fully integrated system; in-channel electrodes; microfluidic structure; microparticle manipulation; microsystem; nanoparticle manipulation; on-chip 27-bit frequency divider; phase shift resolution; reconflgurable system; sensing module; signal amplitude; voltage 1.5 V; voltage 2.5 V; CMOS integrated circuits; Computer architecture; Dielectrophoresis; Electrodes; Microprocessors; Sensors; Transistors; Biological techniques; dielectrophoresis; lab-on-chip; neurotransmitters; system-on-a-chip;
Journal_Title :
Biomedical Circuits and Systems, IEEE Transactions on
DOI :
10.1109/TBCAS.2012.2185844