TY - JOUR
T1 - Size-Based Separation of Particles and Cells Utilizing Viscoelastic Effects in Straight Microchannels
AU - Liu, Chao
AU - Xue, Chundong
AU - Chen, Xiaodong
AU - Shan, Lei
AU - Tian, Yu
AU - Hu, Guoqing
N1 - Publisher Copyright:
© 2015 American Chemical Society.
PY - 2015/6/16
Y1 - 2015/6/16
N2 - Viscoelasticity-induced particle migration has recently received increasing attention due to its ability to obtain high-quality focusing over a wide range of flow rates. However, its application is limited to low throughput regime since the particles can defocus as flow rate increases. Using an engineered carrier medium with constant and low viscosity and strong elasticity, the sample flow rates are improved to be 1 order of magnitude higher than those in existing studies. Utilizing differential focusing of particles of different sizes, here, we present sheathless particle/cell separation in simple straight microchannels that possess excellent parallelizability for further throughput enhancement. The present method can be implemented over a wide range of particle/cell sizes and flow rates. We successfully separate small particles from larger particles, MCF-7 cells from red blood cells (RBCs), and Escherichia coli (E. coli) bacteria from RBCs in different straight microchannels. The proposed method could broaden the applications of viscoelastic microfluidic devices to particle/cell separation due to the enhanced sample throughput and simple channel design.
AB - Viscoelasticity-induced particle migration has recently received increasing attention due to its ability to obtain high-quality focusing over a wide range of flow rates. However, its application is limited to low throughput regime since the particles can defocus as flow rate increases. Using an engineered carrier medium with constant and low viscosity and strong elasticity, the sample flow rates are improved to be 1 order of magnitude higher than those in existing studies. Utilizing differential focusing of particles of different sizes, here, we present sheathless particle/cell separation in simple straight microchannels that possess excellent parallelizability for further throughput enhancement. The present method can be implemented over a wide range of particle/cell sizes and flow rates. We successfully separate small particles from larger particles, MCF-7 cells from red blood cells (RBCs), and Escherichia coli (E. coli) bacteria from RBCs in different straight microchannels. The proposed method could broaden the applications of viscoelastic microfluidic devices to particle/cell separation due to the enhanced sample throughput and simple channel design.
UR - http://www.scopus.com/inward/record.url?scp=84935033286&partnerID=8YFLogxK
U2 - 10.1021/acs.analchem.5b00516
DO - 10.1021/acs.analchem.5b00516
M3 - Article
C2 - 25989347
AN - SCOPUS:84935033286
SN - 0003-2700
VL - 87
SP - 6041
EP - 6048
JO - Analytical Chemistry
JF - Analytical Chemistry
IS - 12
ER -