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Brownian Motion and Large Electric Polarizabilities Facilitate Dielectrophoretic Capture of Sub-200 nm Gold Nanoparticles in Water
Authors:Clyde Midelet  Prof Bruno Le Pioufle  Dr Martinus H V Werts
Institution:1. Univ Rennes, CNRS, SATIE-UMR 8029, 35000 Rennes, France

École normale supérieure de Rennes, SATIE (CNRS UMR 8029), Av. R. Schuman, Campus de Ker Lann, 35170 Bruz, France;2. Ecole normale supérieure Paris-Saclay, SATIE (CNRS UMR 8029), Institut d'Alembert, 94235 Cachan, France;3. Univ Rennes, CNRS, SATIE-UMR 8029, 35000 Rennes, France

Abstract:Dielectrophoresis can move small particles using the force resulting from their polarization in a divergent electric field. In liquids, it has most often been applied to micrometric objects such as biological cells or latex microspheres. For smaller particles, the dielectrophoretic force becomes very small and the phenomenon is furthermore perturbed by Brownian motion. Whereas dielectrophoresis has been used for assembly of superstructures of nanoparticles and for the detection of proteins and nucleic acids, the mechanisms underlying DEP of such small objects require further study. This work presents measurements of the alternating-current (AC) dielectrophoretic response of gold nanoparticles of less than 200 nm diameter in water. An original dark-field digital video-microscopic method was developed and used in combination with a microfluidic device containing transparent thin-film electrodes. It was found that the dielectrophoretic force is only effective in a small zone very close to the tip of the electrodes, and that Brownian motion actually facilitates transport of particles towards this zone. Moreover, the fact that particles as small as 80 nm are still efficiently captured in our device is not only due to Brownian transport but also to an effective polarizability that is larger than what would be expected on basis of current theory for a sphere in a dielectric medium.
Keywords:Dielectrophoresis  gold nanoparticles  microfluidics
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