Claims
- 1. An apparatus for dielectrophoretic concentration of particles under electrokenelic flow, comprising:
at least one microfluidic channel, means for producing a DC voltage across ends of said microfluidic channel at least one pair of interdigitated electrodes located on a surface of said microfluidic channel, and means for producing an AC voltage across the interdigitated electrodes.
- 2. The apparatus of claim 1, additionally including a plurality of pairs of interdigitated electrodes along a length of said microfluidic channel
- 3. In a microfluidic device using electrokinetic/electroosmotic flow to sweep particles down a microfluidic channel, improvement comprising:
interdigitated electrodes patterned on an inner surface of a microfluidic channel, and means for applying an AC voltage across the interdigitated electrodes to set up a non-uniform electric field capable of trapping particles using a dielectrophoretic force as the particles are swept down the microfluidic channel electrokinetically.
- 4. The improvement of claim 3, additionally including a plurality of spaced pairs of interdigitated electrode located along a length of said microfluidic channel.
- 5. The improvement of claim 3, wherein said patterned interdigitated electrodes each comprising a first section with spaced second and third sections extending transversely from said first section, said first section of each electrode being positioned substantially parallel, with a third section of one of the electrode being located intermediate the spaced second and third sections of the other electrode.
- 6. A method for concentrating particles under electrokinetic flow, comprising:
forming at least one pair of interdigitated electrodes on a fluidic microchannel through which particles are swept electrokinetically, and applying an AC voltage across the interdigitated electrodes to establish a non-uniform electric field capable of trapping particles using the dielectrophoretic force.
- 7. The method of claim 6, additionally including applying a DC voltage across ends of the fluidic microchannel to initiate an electrokinetic/electroosmotic flow field.
- 8. The method of claim 6, additionally including forming a plurality of space pairs of interdigitated electrodes along a length of the fluidic microchannel.
- 9. The method of claim 8, additionally including controlling the voltage applied to each pair of interdigitated electrodes
Government Interests
[0001] The United States Government has rights in this invention pursuant to Contract No. W-7405-ENG-48 between the United States Department of Energy and the University of California for the operation of Lawrence Livermore National Laboratory.