Claims
- 1. A method of controlling material flow in a microscale channel, comprising:
providing a first channel segment having first and second ends, a second channel segment communicating with the first channel segment at a first fluid junction, the first fluid junction being disposed between the first and second ends of the first channel segment, and a third channel segment communicating with the first channel segment at a second fluid junction, the second fluid junction being disposed between the first fluid junction and the second end of the first channel segment; applying a differential driving force between the first and second ends of the first channel segment; and selectively applying a second differential driving force through the second channel segment that is sufficient to substantially eliminate a differential driving force between the first end of the first channel segment and the first fluid junction, and selectively applying a third differential driving force through the third channel segment sufficient to substantially eliminate a differential driving force between the second fluid junction and the second end of the first channel segment.
- 2. The method of claim 1, wherein the first differential driving force comprises a pressure differential applied between the first and second ends of the first channel segment.
- 3. The method of claim 1, wherein the first differential driving force comprises an electrical differential applied between the first and second ends of the first channel segment.
- 4. The method of claim 1, wherein the differential driving force comprises both a pressure differential and an electrical differential between the first and second ends of the first channel segment.
- 5. The method of claim 1, wherein the first differential driving force comprises a pressure differential applied through the second channel segment.
- 6. The method of claim 1, wherein the first differential driving force comprises an electrical differential applied through the second channel segment.
- 7. The method of claim 1, wherein the differential driving force comprises both a pressure differential and an electrical differential through the second channel segment.
- 8. The method of claim 1, wherein the first differential driving force comprises a pressure differential applied through the third channel segment.
- 9. The method of claim 1, wherein the first differential driving force comprises an electrical differential applied through the third channel segment.
- 10. The method of claim 1, wherein the differential driving force comprises both a pressure differential and an electrical differential through the third channel segment.
- 11. The method of claim 1, wherein the first end of the first channel segment comprises a junction with at least one other channel segment.
- 12. The method of claim 1, wherein the first end of the first channel segment comprises a junction with at least a first fluid reservoir.
- 13. The method of claim 1, wherein the second end of the first channel segment comprises an junction with at least one other channel segment.
- 14. The method of claim 1, wherein the second end of the first channel segment comprises a junction with at least a first fluid reservoir.
- 15. The method of claim 1, wherein the step of applying the first differential driving force comprises applying a positive pressure to the first end of the first channel segment.
- 16. The method of claim 1, wherein the step of applying the first differential driving force comprises applying a negative pressure to the second end of the first channel segment.
- 17. The method of claim 16, wherein the step of applying the first differential driving force further comprises applying a positive pressure to the first end of the first channel segment.
- 18. The method of claim 1, wherein the differential driving force between the a first end of the first channel segment and the first fluid junction is at least 90% eliminated.
- 19. The method of claim 1, wherein the differential driving force between the first end of the first channel segment and the first fluid junction is at least 95% eliminated.
- 20. The method of claim 1, wherein the differential driving force between the first end of the first channel segment and the first fluid junction is at least 99% eliminated.
- 21. The method of claim 1, wherein the differential driving force between the second fluid junction and the second end of the first channel segment is at least 90% eliminated.
- 22. The method of claim 1, wherein the differential driving force between the second fluid junction and the second end of the first channel segment is at least 95% eliminated.
- 23. The method of claim 1, wherein the differential driving force between the second fluid junction and the second end of the first channel segment is at least 99% eliminated.
- 24. A microfluidic system, comprising:
a first channel segment having first and second ends; a second channel segment communicating with the first channel segment at a first fluid junction, the first fluid junction being disposed between the first and second ends of the first channel segment; a third channel segment communicating with the first channel segment at a second fluid junction, the second fluid junction being disposed between the first fluid junction and the second end of the first channel segment; and a flow controller operably coupled to at least one of the first and second ends of the first channel segment and the second and third channel segments, and set to:
apply a first differential driving force between the first and second ends of the first channel segment; selectively apply a second differential driving force to the second channel segment that is sufficient to substantially eliminate a differential driving force between the first end of the first channel segment and the first fluid junction; and selectively apply a third differential driving force through the third channel segment sufficient to substantially eliminate a differential driving force between the second fluid junction and the second end of the first channel segment.
- 25. The system of claim 24, wherein the first, second and third channels are disposed in a single integrated body structure.
- 26. The system of claim 24, wherein the flow controller comprises a pressure source operably coupled to at least one of the first and second ends of the first channel segment.
- 27. The system of claim 24, wherein the flow controller comprises at least first electrical power supply operably coupled to the first and second ends of the first channel segment.
- 28. The system of claim 24, wherein the at least one electrical power supply is operably coupled to the second and third channel segments.
- 29. The system of claim 24, wherein the flow controller is removably operably coupled to at least one of the first and second ends of the first channel segment.
- 30. The system of claim 24, further comprising a capillary element fluidly coupled to the first end of the first channel segment.
- 31. The system of claim 24, further comprising a capillary element fluidly coupled to the second end of the first channel segment.
- 32. The system of claim 24, further comprising first and second capillary elements fluidly coupled to the first channel segments, the first and second fluid junctions being disposed along the first channel segment at points between points at which the first and second capillary elements are in fluid communication with the first channel segment, at least one of the first and second capillary elements being an input pipettor.
- 33. The system of claim 24, further comprising an input pipettor and an output nozzle, the input pipettor being fluidly coupled to the first end of the first channel segment and the output nozzle being fluidly coupled to the second end of the first channel segment.
- 34. A method of sampling and dispensing materials, comprising:
providing a microfluidic device that comprises:
a first channel network comprising at least one valve module, the valve module comprising first, second and third channel segments in the channel network, the second and third channel segments intersecting the first channel segment at an inlet end and an outlet end of the first channel segment, the inlet and outlet ends of the first channel segment forming inlet and outlet sides of the valve module, respectively, and a flow controller that directs flow of fluid through the first, second and third channel segments to selectively stop flow into and out of the inlet and outlet sides of the valve module when the valve module is in a closed configuration, and allowing flow into and out of the inlet and outlet sides of the valve module when the valve module is in an open configuration; first and second pipettor elements fluidly connected to the first channel network, wherein the first pipettor element is fluidly connected to the first channel network on an inlet side of the valve module, and the second pipettor element is fluidly coupled to the first channel network on an outlet side of the valve module; drawing material into the channel network via the first pipettor while maintaining the valve module in the closed configuration; converting the valve module to an open configuration; and flowing the material out of the second pipettor element.
- 35. A microfluidic device for sampling and dispensing material, comprising:
a body structure having at least a first channel network disposed therein, the first channel network comprising at least a first valve module, wherein the valve module comprises first, second and third channel segments in the channel network, the second and third channel segments intersecting the first channel segment at an inlet end and an outlet end of the first channel segment, the inlet and outlet ends of the first channel segment forming inlet and outlet sides of the valve module; and first and second pipettor elements fluidly connected to the first channel network, wherein the first pipettor element is fluidly connected to the first channel network on an inlet side of the valve module, and the second pipettor element is fluidly coupled to the first channel network on an outlet side of the valve module.
- 36. The microfluidic device of claim 35, further comprising one or more pressure sources operably coupled to the second and third channel segments for selectively permitting or preventing flow into the valve module from the inlet side or flow out of the valve module from the outlet side.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims priority to Provisional Patent Application No. 60/264,788, filed Jan. 29, 2001, which is hereby incorporated herein in its entirety for all purposes.
Provisional Applications (1)
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Number |
Date |
Country |
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60264788 |
Jan 2001 |
US |