Claims
- 1. A pressure-driven substantially planar liquid chromatography device comprising a plurality of device layers defining a plurality of microfluidic separation channels containing packed stationary phase material.
- 2. The device of claim 1, further comprising a porous frit in fluid communication with the plurality of microfluidic separation channels, wherein the packed stationary phase material comprises packed particulate material, the particulate material has an average particle size, the frit material has an average pore size, and the average pore size is smaller than the average particle size.
- 3. The device of claim 1, further comprising a porous frit disposed between two device layers of the plurality of device layers, the porous frit being in fluid communication with at least one microfluidic separation channel of the plurality of microfluidic separation channels.
- 4. The device of claim 1 wherein the plurality of microfluidic separation channels are adapted to operate at a pressure greater than or equal to about 10 psi.
- 5. The device of claim 1 wherein the plurality of microfluidic separation channels are adapted to operate at a pressure greater than or equal to about 100 psi.
- 6. The device of claim 1 wherein each microfluidic separation channel of the plurality of microfluidic separation channels has a length greater than or equal to about one centimeter.
- 7. The device of claim 1 wherein at least one layer of the plurality of device layers is a stencil layer.
- 8. The device of claim 1 wherein the plurality of device layers comprise polymeric materials.
- 9. The device of claim 1, further comprising:
a stationary phase inlet port; and a splitter disposed between and in fluid communication with the stationary phase inlet port and the plurality of microfluidic separation channels; wherein the plurality of microfluidic separation channels and the common junction or manifold region are substantially filled with packed stationary phase material.
- 10. The device of claim 1, further comprising:
a mobile phase inlet port; and a splitter disposed between and in fluid communication with the mobile phase inlet port and the plurality of microfluidic separation channels.
- 11. The device of claim 1 wherein the packed stationary phase material comprises packed particles, and the particles comprise silicon, zirconium, or polymeric materials.
- 12. The device of claim 11 wherein the packed particles are unsintered.
- 13. The device of claim 11 wherein the packed particles comprise at least one surface functional group.
- 14. The device of claim 13 wherein the at least one surface functional groups is selected from the group consisting of: alkyl, cyano, amino, nitro, hydroxy, phenyl, phenyl-hexyl, and sulfonic acid.
- 15. The device of claim 1, further comprising a detection region in fluid communication with at least one microfluidic separation column of the plurality of microfluidic separation columns, the detection region permitting detection of at least one property of a substance eluted from the at least one microfluidic separation column.
- 16. A pressure-driven microfluidic separation device comprising:
a fluidic inlet port; a fluidic outlet port; and a plurality of microfluidic separation channels in fluid communication with a common junction or manifold region upstream of the outlet port; wherein the microfluidic separation channels and common junction or manifold region are substantially filled with packed particulate stationary phase material.
- 17. The device of claim 16 wherein the packed particulate material comprises silicon, zirconium, or polymeric particles.
- 18. The device of claim 17 wherein the packed particulate material is unsintered.
- 19. The device of claim 17 wherein the packed particulate material comprises at least one surface functional group.
- 20. The device of claim 19 wherein the at least one surface functional group is selected from the group consisting of: alkyl, cyano, amino, nitro, hydroxy, phenyl, phenyl-hexyl, and sulfonic acid.
- 21. The device of claim 16 wherein the device is constructed with polymeric materials.
- 22. The microfluidic device of claim 16 wherein the device is constructing with a plurality of device layers including at least one stencil layer having at least one microfluidic channel defined through the entire thickness of the at least one stencil layer.
- 23. The device of claim 22, further comprising a porous frit disposed between two device layers of the plurality of device layers, the porous frit being in fluid communication with at least one microfluidic separation channel of the plurality of microfluidic separation channels.
- 24. The microfluidic device of claim 16, further comprising a porous frit disposed between the fluidic outlet port and at least one microfluidic separation channel of the plurality of microfluidic separation channels.
- 25. The microfluidic device of claim 16, further comprising a porous frit disposed between the fluidic inlet port and at least one microfluidic separation channel of the plurality of microfluidic separation channels.
- 26. The microfluidic device of claim 16, further comprising a porous frit in fluid communication with the plurality of microfluidic separation channels, wherein the packed stationary phase material comprises packed particulate material, the particulate material has an average particle size, the frit material has an average pore size, and the average pore size is smaller than the average particle size.
- 27. The microfluidic device of claim 16, further comprising a splitter disposed between the inlet port and the plurality of microfluidic separation channels.
- 28. The microfluidic device of claim 27 wherein the inlet port and splitter are used to supply mobile phase solvent to each microfluidic separation channel of the plurality of microfluidic separation channels.
- 29. The microfluidic device of claim 16, further comprising a plurality of fluidic inlet ports.
- 30. The microfluidic device of claim 16, further comprising a plurality of fluidic outlet ports.
- 31. The microfluidic device of claim 16, further comprising at least one detection region in fluid communication with at least one microfluidic separation channel of the plurality of separation channels.
- 32. The device of claim 16 wherein the plurality of microfluidic separation channels are adapted to operate at a pressure greater than or equal to about 10 psi.
- 33. The device of claim 16 wherein the plurality of microfluidic separation channels are adapted to operate at a pressure greater than or equal to about 100 psi.
- 34. The device of claim 16 wherein each microfluidic separation channel of the plurality of microfluidic separation channels has a length greater than or equal to about one centimeter.
- 35. A method for packing a plurality of separation channels, the method comprising the steps of:
providing a fluidic device having a plurality of separation channels; supplying a pressurized slurry to the device, the slurry comprising particulate material and a liquid; splitting the slurry among the plurality of separation channels; and retaining the particulate material within the plurality of separation channels.
- 36. The method of claim 35 wherein the splitting step is performed within the fluidic device.
- 37. The method of claim 35 wherein the retaining step is performed using a porous frit disposed within the fluidic device.
- 38. The method of claim 35, further comprising the step of agitating the slurry.
- 39. The method of claim 35, further comprising the step of forming slurry by controllably adding particulate material to a flowing stream of liquid.
- 40. The method of claim 35, further comprising the step of vibrating the fluidic device.
- 41. The method of claim 35, wherein the slurry is pressurized to at least about 200 psi.
- 42. The method of claim 35, further comprising the step of applying pressure to the slurry in an increasing pressure ramp.
- 43. The method of claim 35 wherein the particulate material comprises silicon, zirconium, or polymeric particles.
- 44. The method of claim 35 wherein the particulate material comprises at least one surface functional group.
- 45. The method of claim 43 wherein the at least one surface functional group is selected from the group consisting of: alkyl, cyano, amino, nitro, hydroxy, phenyl, phenyl-hexyl, and sulfonic acid.
- 46. A microfluidic device containing a packed separation channel fabricated according to the method of claim 35.
- 47. A method for fabricating at least one separation column, the method comprising the steps of:
providing a fluidic device having a slurry inlet port, an internal void defining a plurality of channels that connect to a common junction or manifold region, and a solvent outlet port downstream of the common junction or manifold region; supplying a slurry comprising particulate material and a liquid to the slurry inlet port; applying a pressure differential between the slurry inlet port and the solvent outlet port to promote the flow of slurry into the void; and substantially filling the common junction or manifold region and the plurality of channels with slurry.
- 48. The method of claim 47, further comprising the step of agitating the slurry.
- 49. The method of claim 47, further comprising the step of forming slurry by controllably adding particulate material to a flowing stream of liquid.
- 50. The method of claim 47, further comprising the step of vibrating the fluidic device.
- 51. The method of claim 47 wherein the pressure differential is applied in an increasing ramp such that the differential increases over time.
- 52. The method of claim 47 wherein the pressure differential is at least about 200 psi.
- 53. The method of claim 47 wherein the particulate material comprises silicon, zirconium, or polymeric particles.
- 54. The method of claim 47 wherein the particulate material comprises at least one surface functional group.
- 55. The method of claim 54 wherein the at least one surface functional group is selected from the group consisting of: alkyl, cyano, amino, nitro, hydroxy, phenyl, phenyl-hexyl, and sulfonic acid.
- 56. A microfluidic device containing a separation column fabricated according to the method of claim 47.
STATEMENT OF RELATED APPLICATIONS
[0001] This application claims benefit of two U.S. Provisional Patent Applications, Serial No. 60/357,683 filed Feb. 13, 2002 and currently pending, and Serial No. 60/415,896 filed Oct. 2, 2002 and currently pending.
Provisional Applications (2)
|
Number |
Date |
Country |
|
60415896 |
Oct 2002 |
US |
|
60357683 |
Feb 2002 |
US |