TY - GEN
T1 - Size-dependent filtration and trapping of microparticle in a microfluidic chip using centrifugal force and a graduated mechanical gap
AU - Maruyama, Hisataka
AU - Sakuma, Shinya
AU - Yamanishi, Yoko
AU - Arai, Fumihito
PY - 2009
Y1 - 2009
N2 - We proposed size-dependent microparticle filtration and particle trap by centrifugal force and mechanical restriction using three-dimensional magnetically driven microtool (3D-MMT) in a microfluidic chip. Novelties of this paper are summarized as follows. (1) Filtration of particles is robust against pressure fluctuation in microchannels rather than using only hydrodynamic force because particles are separated mechanically, (2) Clogging of the microparticles could be avoided by rotation of the 3D-MMT in a mcirochamber, (3) Size-classified microparticles can be trapped along the gaps in microchannels by flow control. Microparticles having different sizes flow in spiral microchannels and filtered according to their sizes by gaps between gaps and substrate by centrifugal force. Microparticles larger than the gap cannot pass through the gap and are kept flowing in the inner microchannel. Rotation of the 3D-MMT by magnetic force from an external magnetic circuit generates swirling flow in the microchamber. Size-classified microparticles can be trapped in microchannel by closing the drain port of the target particle. Trapped particles can be measured by direct observation and treated by reagent. After the experiment, trapped particles are extracted by open the drain ports. We successfully demonstrated microparticle filtration and microparticle trap of filtered particles in the developed microfluidic chip.
AB - We proposed size-dependent microparticle filtration and particle trap by centrifugal force and mechanical restriction using three-dimensional magnetically driven microtool (3D-MMT) in a microfluidic chip. Novelties of this paper are summarized as follows. (1) Filtration of particles is robust against pressure fluctuation in microchannels rather than using only hydrodynamic force because particles are separated mechanically, (2) Clogging of the microparticles could be avoided by rotation of the 3D-MMT in a mcirochamber, (3) Size-classified microparticles can be trapped along the gaps in microchannels by flow control. Microparticles having different sizes flow in spiral microchannels and filtered according to their sizes by gaps between gaps and substrate by centrifugal force. Microparticles larger than the gap cannot pass through the gap and are kept flowing in the inner microchannel. Rotation of the 3D-MMT by magnetic force from an external magnetic circuit generates swirling flow in the microchamber. Size-classified microparticles can be trapped in microchannel by closing the drain port of the target particle. Trapped particles can be measured by direct observation and treated by reagent. After the experiment, trapped particles are extracted by open the drain ports. We successfully demonstrated microparticle filtration and microparticle trap of filtered particles in the developed microfluidic chip.
KW - Filtration
KW - Magnetically driven microtool
KW - Mechanical gap
KW - Microparticles
KW - Trap
UR - http://www.scopus.com/inward/record.url?scp=77952399657&partnerID=8YFLogxK
UR - http://www.scopus.com/inward/citedby.url?scp=77952399657&partnerID=8YFLogxK
U2 - 10.1109/SI.2009.5384565
DO - 10.1109/SI.2009.5384565
M3 - Conference contribution
AN - SCOPUS:77952399657
SN - 9781424459070
T3 - 2009 IEEE/SICE International Symposium on System Integration: SI International 2008 - The 2nd Symposium on System Integration
SP - 7
EP - 12
BT - 2009 IEEE/SICE International Symposium on System Integration
T2 - 2nd International Symposium on System Integration, SII 2009
Y2 - 29 November 2009 through 29 November 2009
ER -