We study a recently demonstrated AC electrokinetic technique for manipulation and concentration of colloidal particles on an electrode surface. The technique uses indium tin oxide (ITO)-based parallel-plate electrodes on which highly localized infrared (1064 nun) laser illumination is shone. We show that the highly localized laser illumination leads to a highly nonuniform heating of the electrode substrate, which in turn drives an electrothermal microvortex resulting in a rapid transport of particles toward the illuminated site. Hundreds of polystyrene particles, with diameters ranging from 2.0 to 0.1 mu m, suspended in a low conductivity solution (2.0 mS/m) could be aggregated at selected locations on the electrode by activating the laser ...
We demonstrate a new hybrid optoelectric technique that can manipulate objects across several length...
The rapid electrokinetic patterning (REP) technique has been demonstrated to enable dynamic particle...
Electric fields can induce various types of motion in liquid suspensions of colloidal nanoparticles....
We study a recently demonstrated AC electrokinetic technique for manipulation and concentration of c...
We study a recently demonstrated AC electrokinetic technique for manipulation and concentration of c...
This report introduces a novel optically induced AC electrokinetic technique that generates microflu...
We demonstrate an optically induced ac electrokinetic technique that rapidly and continuously accumu...
We demonstrate an opto-electrokinetic technique for noninvasive particle manipulation on the surface...
We demonstrate an optically induced electrokinetic technique that continuously concentrates nanopart...
This fluid dynamics video will illustrate an optically induced electrokinetic technique for non-inva...
Microfluidics is ushering a new era in biological analysis and point-of-care diagnostics. By perform...
The realm of microfluidics deals with the study, control and manipulation of fluids that are geometr...
Rapid Electrokinetic Patterning (REP) is an optoelectric technique for trapping and translating micr...
This dissertation explores various physical mechanisms of the Rapid Electrokinetic Patterning (REP) ...
Abstract: We demonstrated trapping of 6-µm polystyrene microparticles over a 253-µm range using a tr...
We demonstrate a new hybrid optoelectric technique that can manipulate objects across several length...
The rapid electrokinetic patterning (REP) technique has been demonstrated to enable dynamic particle...
Electric fields can induce various types of motion in liquid suspensions of colloidal nanoparticles....
We study a recently demonstrated AC electrokinetic technique for manipulation and concentration of c...
We study a recently demonstrated AC electrokinetic technique for manipulation and concentration of c...
This report introduces a novel optically induced AC electrokinetic technique that generates microflu...
We demonstrate an optically induced ac electrokinetic technique that rapidly and continuously accumu...
We demonstrate an opto-electrokinetic technique for noninvasive particle manipulation on the surface...
We demonstrate an optically induced electrokinetic technique that continuously concentrates nanopart...
This fluid dynamics video will illustrate an optically induced electrokinetic technique for non-inva...
Microfluidics is ushering a new era in biological analysis and point-of-care diagnostics. By perform...
The realm of microfluidics deals with the study, control and manipulation of fluids that are geometr...
Rapid Electrokinetic Patterning (REP) is an optoelectric technique for trapping and translating micr...
This dissertation explores various physical mechanisms of the Rapid Electrokinetic Patterning (REP) ...
Abstract: We demonstrated trapping of 6-µm polystyrene microparticles over a 253-µm range using a tr...
We demonstrate a new hybrid optoelectric technique that can manipulate objects across several length...
The rapid electrokinetic patterning (REP) technique has been demonstrated to enable dynamic particle...
Electric fields can induce various types of motion in liquid suspensions of colloidal nanoparticles....