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  4. Particle concentrating and sorting under a rotating electric field by direct optical-liquid heating in a microfluidics chip
 
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Particle concentrating and sorting under a rotating electric field by direct optical-liquid heating in a microfluidics chip

Journal
Biomicrofluidics
Journal Volume
11
Journal Issue
3
Date Issued
2017
Author(s)
Chen, Y.-L.
Jiang, H.-R.
HONG-REN JIANG  
DOI
10.1063/1.4982946
URI
https://scholars.lib.ntu.edu.tw/handle/123456789/486631
URL
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85018421583&doi=10.1063%2f1.4982946&partnerID=40&md5=3e018c8aeb6c5b09c1884e201d5ea105
Abstract
We demonstrate a functional rotating electrothermal technique for rapidly concentrating and sorting a large number of particles on a microchip by the combination of particle dielectrophoresis (DEP) and inward rotating electrothermal (RET) flows. Different kinds of particles can be attracted (positive DEP) to or repelled (negative DEP) from electrode edges, and then the n-DEP responsive particles are further concentrated in the heated region by RET flows. The RET flows arise from the spatial inhomogeneous electric properties of fluid caused by direct infrared laser (1470 nm) heating of solution in a rotating electric field. The direction of the RET flows is radially inward to the heated region with a co-field (the same as the rotating electric field) rotation. Moreover, the velocity of the RET flows is proportional to the laser power and the square of the electric field strength. The RET flows are significant over a frequency range from 200 kHz to 5 MHz. The RET flows are generated by the simultaneous application of the infrared laser and the rotating electric field. Therefore, the location of particle concentrating can be controlled within the rotating electric field depending on the position of the laser spot. This multi-field technique can be operated in salt solutions and at higher frequency without external flow pressure, and thus it can avoid electrokinetic phenomena at low frequency to improve the manipulation accuracy for lab-on-chip applications.
SDGs

[SDGs]SDG3

[SDGs]SDG7

Type
journal article

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