Claims
- 1. A microfluidic system comprising:
a fluid path; an inlet to the fluid path; an outlet to the fluid path; and a first closing member disposed along the fluid path between the inlet and the outlet; wherein the fluid path has a cross-sectional dimension of less than about 500 μm.
- 2. The microfluidic system of claim 1, wherein the first closing member comprises a first flexible member.
- 3. The microfluidic system of claim 2, wherein the first closing member has an open position and a closed position and is constructed and arranged to travel from the closed position to the open position without sliding against any portion of the microfluidic system.
- 4. The micro fluidic system of claim 2, wherein the first flexible member comprises a flap.
- 5. The microfluidic system of claim 4, wherein the flap is generally semicircular in shape.
- 6. The microfluidic system of claim 2, wherein the first flexible member comprises a diaphragm.
- 7. The microfluidic system of claim 6, wherein the diaphragm comprises an opening.
- 8. The microfluidic system of claim 7, further comprising a seat constructed and arranged to support the diaphragm around at least the periphery of the opening.
- 9. The microfluidic system of claim 2, wherein the first flexible member comprises an elastomer.
- 10. The microfluidic system of claim 1, wherein the first closing member comprises a first free-floating member.
- 11. The microfluidic system of claim 10, wherein the first free-floating member comprises a spherical body.
- 12. The microfluidic system of claim 1, wherein the fluid path is constructed of a flexible material.
- 13. The microfluidic system of claim 12, wherein the fluid path is constructed of an elastomer.
- 14. The microfluidic system of claim 12, further comprising:
a flexible support connected to the flexible material.
- 15. The microfluidic system of claim 1, further comprising:
a second closing member disposed along the fluid path between the inlet and the outlet; and a reservoir disposed along the fluid path between the first closing member and the second closing member.
- 16. The microfluidic system of claim 15, wherein a volume of the reservoir is variable.
- 17. The microfluidic system of claim 16, wherein the reservoir comprises an elastomer.
- 18. The microfluidic system of claim 1, wherein the fluid path has a cross-sectional dimension of less than about 300 μm.
- 19. The microfluidic system of claim 18, wherein the fluid path has a cross-sectional dimension of less than about 100 μm.
- 20. The microfluidic system of claim 19, wherein the fluid path has a cross-sectional dimension of less than about 50 μm.
- 21. The microfluidic system of claim 1, wherein the closing member comprises a portion of a check valve.
- 22. The microfluidic system of claim 1, wherein the closing member comprises a substantially sealed barrier and further comprising an electrode electrically connected to at least one of the inlet of the fluid path and the outlet of the fluid path.
- 23. A valve having an open position and closed position, comprising:
a fluid path; an inlet to the fluid path; an outlet to the fluid path; a flexible diaphragm disposed along the fluid path between the inlet and the outlet; an opening in the flexible diaphragm; and a seat constructed and arranged such that, when the valve is in the closed position, the seat obstructs the opening and supports the flexible diaphragm around at least the periphery of the opening.
- 24. The valve of claim 23, wherein the fluid path has a cross-sectional dimension of less than about 500 μm.
- 25. The valve of claim 23, wherein the fluid path is constructed of a flexible material.
- 26. The valve of claim 25, wherein the fluid path is constructed of an elastomer.
- 27. A microfluidic pump, comprising:
a fluid path; an inlet to the fluid path; an outlet to the fluid path; a first closing member disposed along the fluid path between the inlet and the outlet; a second closing member disposed along the fluid path between the inlet and the outlet; and a reservoir having a variable volume disposed along the fluid path between the first closing member and the second closing member; wherein the fluid path has a cross-sectional dimension of less than about 500 μm.
- 28. The microfluidic pump of claim 27, wherein the fluid path is constructed of a flexible material.
- 29. The microfluidic pump of claim 28, wherein the fluid path is constructed of an elastomer.
- 30. The microfluidic pump of claim 28, further comprising:
a flexible support connected to the flexible material.
- 31. A microfluidic system, comprising:
a flexible support; a flexible material connected to the flexible support; and at fluid path within the flexible material having a cross-sectional dimension of less than about 500 μm.
- 32. The microfluidic system of claim 31, further comprising:
an inlet to the fluid path; an outlet to the fluid path; and a first closing member disposed along the fluid path between the inlet and the outlet.
- 33. The microfluidic system of claim 32, further comprising:
a second closing member disposed along the fluid path between the inlet and the outlet; and a reservoir disposed along the fluid path between the first closing member and the second closing member.
- 34. The microfluidic system of claim 31, wherein the flexible support is an adhesive tape.
- 35. A method for making a microfluidic system, comprising:
providing a master corresponding to the microfluidic system; forming the microfluidic system on the master; connecting a support to the microfluidic system; and removing the microfluidic system from the master.
- 36. The method of claim 35, wherein the connecting step comprises forming a reversible connection between the support and the microfluidic system.
- 37. The method of claim 35, wherein the connecting step comprises adhering the support to the microfluidic system.
- 38. The method of claim 37, wherein the support comprises an adhesive tape.
- 39. The method of claim 35, wherein the forming step further comprises forming the microfluidic system out of a curable elastomer.
- 40. The method of claim 35, wherein the forming step further comprises forming the microfluidic system such that it is less than 1 mm thick.
- 41. The method of claim 40, wherein the forming step further comprises forming the microfluidic system such that it is less than 500 μm thick.
- 42. The method of claim 41, wherein the forming step further comprises forming the microfluidic system such that it is less than 100 μm thick.
- 43. The method of claim 35, further comprising:
connecting the microfluidic system to a substrate; and removing the support from the microfluidic system.
- 44. The method of claim 43, wherein the removing step comprises:
applying a solvent to at least one of the support and the microfluidic system.
- 45. The method of claim 44, wherein the step for connecting the microfluidic system to a substrate is substantially irreversible.
- 46. A method for opening a microfluidic valve, comprising:
providing a microfluidic valve including:
a fluid path, an inlet to the fluid path, an outlet to the fluid path, and a first closing member disposed along the fluid path between the inlet and the outlet, wherein the fluid path has a cross-sectional dimension of less than about 500 μm; providing a flow of a fluid through the fluid path; and deflecting the closing member with the flow from a closed position to an open position without the closing member sliding against any portion of the microfluidic valve.
- 47. A method for manipulating a flow of a fluid in a microfluidic system, comprising:
providing a fluid path having a cross-sectional dimension of less that about 500 μm; initiating the flow of the fluid through the fluid path in a first direction; and inhibiting the flow of the fluid through the fluid path in a second direction.
- 48. The method of claim 47, wherein the act of initiating includes urging open a closing member with the flow of the fluid in the first direction.
- 49. The method of claim 47, wherein the act of inhibiting includes urging closed a closing member with the flow of the fluid in the second direction.
- 50. A microfluidic system comprising:
a first fluid path; a second fluid path; and a first closing member comprised of a voltage degradable material and disposed between the first and second fluid paths; wherein one of the first and second fluid paths has a cross-sectional dimension of less than about 500 μm.
- 51. The microfluidic system of claim 50, wherein the closing member comprises a substantially sealed barrier.
- 52. The microfluidic system of claim 51, wherein the closing member is between about 5 micrometers and about 50 micrometers thick.
- 53. The microfluidic system of claim 52, wherein the closing member is between about 15 micrometers and about 40 micrometers thick.
- 54. The microfluidic system of claim 50, wherein the closing member is constructed of a polymer.
- 55. The microfluidic system of claim 50, wherein the closing member has a breakdown voltage of less than about 250 volts per micrometer.
- 56. The microfluidic system of claim 55, wherein the closing member has a breakdown voltage of less than about 150 volts per micrometer.
- 57. The microfluidic system of claim 56, wherein the closing member has a breakdown voltage of less than about 75 volts per micrometer.
- 58. The microfluidic system of claim 57, wherein the closing member has a breakdown voltage of less than about 25 volts per micrometer.
- 59. The microfluidic system of claim 50, further comprising an electrode electrically connected to one of the first and second fluid paths.
- 60. The microfluidic system of claim 59, wherein one of the first and second fluid paths is connected to an electrical ground.
- 61. The microfluidic system of claim 59, further comprising an electrical energy source connected to the electrode.
- 62. The microfluidic system of claim 61, wherein the electrical energy source comprises a pizoelectrical generator.
- 63. The microfluidic system of claim 61, wherein the electrical energy source is sized and adapted to apply a voltage greater than the breakdown voltage of closing member.
- 64. A microfluidic system comprising:
a first fluid path; a second fluid path; and a first closing member comprised of a voltage degradable material and disposed between the first and second fluid paths; wherein the first closing member has a thickness of less than about 50 μm.
- 65. A microfluidic device, comprising:
a substantially sealed fluid reservoir; a fluid positioned within the fluid reservoir; a fluid path separated from the fluid reservoir by a closing member; a first electrode connected to the fluid reservoir; and a second electrode connected to the fluid path.
- 66. A method of manipulating fluid flow in a fluidic system, comprising:
creating a voltage difference between a first fluid path and a second fluid path separated by a closing member, the voltage being sufficient to form an opening in the closing member; and allowing a fluid to flow between the first and second fluid paths.
- 67. The method of claim 66, wherein creating a voltage difference comprises creating a voltage difference greater than the breakdown voltage of the closing member.
- 68. The method of claim 66, further comprising electrically connecting one of the first and second fluid paths to an electrical energy source.
- 69. The method of claim 66, further comprising electrically connecting one of the first and second fluid paths to an electrical ground.
- 70. A method of testing, comprising:
introducing a test fluid into a test reservoir; creating a voltage difference between the test reservoir and a reagent reservoir containing a reagent and separated from the test reservoir by a closing member, the voltage difference being sufficient to make an opening in the closing member; allowing at least one of the test fluid and the reagent to flow between the test reservoir and the reagent reservoir.
- 71. A method of making an opening in a fluidic system, comprising:
creating a voltage difference between a first fluid path and a second fluid path separated from the first fluid path by a closing member sufficient to make an opening in the closing member.
Parent Case Info
[0001] This patent application claims priority to U.S. patent application Ser. No. 60/260,221, filed Jan. 8, 2001, U.S. patent application Ser. No. 60/327,430, filed Oct. 5, 2001 and U.S. patent application Ser. No. 60/331,856, filed Nov. 20, 2001.
Government Interests
[0002] This invention was sponsored by NSF Grant Nos. ECS-9729405, ECS-0004030, MRSEC DMR-9809363 and AFOSR/SPAWAR Grant No. N66001-98-1-8915. The government has certain rights in the invention.
Provisional Applications (3)
|
Number |
Date |
Country |
|
60260221 |
Jan 2001 |
US |
|
60327430 |
Oct 2001 |
US |
|
60331856 |
Nov 2001 |
US |