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research article

Magnetic Core Shell Nanoparticles Trapping in a Microdevice Generating High Magnetic Gradient

Teste, Bruno
•
Malloggi, Florent
•
Gassner, Anne-Laure  
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2011
Lab on a Chip

Magnetic core shell nanoparticles (MCSNPs) 30 nm diameter with a magnetic weight of 10% are usually much too small to be trapped in microfluidic systems using classical external magnets. Here, a simple microchip for efficient MCSNPs trapping and release is presented. It comprises a bed of micrometric iron beads (6–8 mm diameter) packed in a microchannel against a physical restriction and presenting a low dead volume of 0.8 nL. These beads of high magnetic permeability are used to focus magnetic field lines from an external permanent magnet and generate local high magnetic gradients. The nanoparticles magnetic trap has been characterised both by numerical simulations and fluorescent MCSNPs imaging. Numerical simulations have been performed to map both the magnetic flux density and the magnetic force, and showed that MCSNPs are preferentially trapped at the iron bead magnetic poles where the magnetic force is increased by 3 orders of magnitude. The trapping efficiency was experimentally determined using fluorescent MCSNPs for different flow rates, different iron beads and permanent magnet positions. At a flow rate of 100 mL h1, the nanoparticles trapping/release can be achieved within 20 s with a preconcentration factor of 4000.

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Type
research article
DOI
10.1039/C0LC00510J
Web of Science ID

WOS:000287409600008

Author(s)
Teste, Bruno
Malloggi, Florent
Gassner, Anne-Laure  
Georgelin, Thomas
Siaugue, Jean-Michel
Varenne, Anne
Girault, Hubert  
Descroix, Stéphanie
Date Issued

2011

Publisher

Royal Society of Chemistry

Published in
Lab on a Chip
Volume

11

Start page

833

End page

840

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LEPA  
Available on Infoscience
March 28, 2011
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/65677
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