Claims
- 1. A method of forming a microfluidic system platform comprising the steps of:
providing a mold frame having frame walls surrounding a mold cavity; providing a set of mold forms for use in molding hollow microfluidic features, the set of mold forms comprising elongated mold forms for use in molding microfluidic channels, and block mold forms for use in molding microfluidic cavities; constructing a three-dimensional model construction of a microfluidic flow path network in the mold cavity by interconnecting mold forms selected from the set of mold forms and suspending the model construction in the mold cavity via the frame walls; introducing a hardenable liquid into the mold cavity to immerse the model construction thereby; hardening the liquid to form (1) a platform structure having a shape of the mold cavity and (2) the microfluidic flow path network in the platform structure having a seamless shape of the model construction and including at least two access ports for enabling fluidic communication with the formed microfluidic flow path network; and removing the model construction from the platform structure through the at least two access ports so as to avail the formed microfluidic flow path network.
- 2. The method as in claim 1,
wherein the hardenable liquid comprises a polymeric material.
- 3. The method as in claim 2,
wherein the polymeric material comprises an elastomeric silicone polymer.
- 4. The method as in claim 3,
wherein the silicone polymer comprises poly (dimethylsiloxane).
- 5. The method as in claim 1,
wherein the frame walls have throughbores communicating with the mold cavity, and the model construction is suspended in the mold cavity by seating at least some of the selected mold forms in the throughbores.
- 6. The method as in claim 5,
wherein the removal of the model construction from the platform structure includes removing at least some of the selected mold forms through the throughbores.
- 7. The method as in claim 1,
wherein the set of mold forms available for selection further comprises interconnect mold forms for interconnecting at least two of the elongated mold forms to each other.
- 8. The method as in claim 7,
wherein each of the interconnect mold forms have at least two connector ports in fluidic communication with each other, with each connector port adapted to seat an end portion of an elongated mold form therein.
- 9. The method as in claim 8,
wherein the removal of the model construction from the platform structure removes all selected mold forms except interconnect mold forms which remain embedded, whereby the fluidic flow path network is defined in part by the embedded interconnect mold forms.
- 10. The method as in claim 1,
wherein the construction of the model construction includes interconnecting a pre-formed microdevice to the model construction in the mold cavity so that, upon hardening the liquid and removing the model construction, the microdevice remains embedded in the platform structure as part of the microfluidic flow path network and in fluidic communication therewith.
- 11. The method as in claim 1,
wherein the model construction of the microfluidic flow path network has meso-scale dimensions.
- 12. The method as in claim 11,
wherein at least one of the frame walls has an inner surface having micro-scale topographical features facing the mold cavity, and further comprising placing the meso-scale model construction in contact with the micro-scale topographical features so that, upon hardening the liquid and removing the model construction, the meso-scale microfluidic flow path network is in fluidic communication with micro-scale open cavities formed on a molded outer surface of the platform structure, whereby the meso-scale microfluidic flow path network serves to interface macro and micro-scale mediums.
- 13. The method as in claim 12,
further comprising bonding a substrate to the molded outer surface of the molded structure so as to enclose the micro-scale open cavities and thereby form a micro-scale microfluidic flow path network in fluidic communication with the meso-scale microfluidic flow path network.
- 14. The method as in claim 1,
wherein at least one of the access ports is a meso-scale reservoir cavity for receiving fluidic samples and formed from a block mold form placed in surface-to-surface contact with a frame wall.
- 15. The method as in claim 1,
wherein at least one of the access ports is a docking port adapted to captively seat a pre-formed microdevice so that fluidic communication may be established with the formed microfluidic flow path network.
- 16. A microfluidic system platform formed according to the method of claim 1.
- 17. A method of forming an integrated microfluidic system comprising the steps of:
providing a mold frame having frame walls surrounding a mold cavity; providing a set of mold forms for use in molding hollow microfluidic features, the set of mold forms comprising elongated mold forms for use in molding microfluidic channels, and block mold forms for use in molding microfluidic cavities; constructing a three-dimensional model construction of a microfluidic flow path network in the mold cavity by interconnecting mold forms selected from the set of mold forms and suspending the model construction in the mold cavity via the frame walls; introducing a hardenable liquid into the mold cavity to immerse the model construction thereby; hardening the liquid to form (1) a platform structure having a shape of the mold cavity and (2) the microfluidic flow path network in the platform structure having a seamless shape of the model construction and including at least two access ports for enabling fluidic communication with the formed microfluidic flow path network; removing the model construction from the platform structure through the at least two access ports so as to avail the formed microfluidic flow path network; and connecting a pre-formed microdevice to the platform structure so that fluidic communication is established with the formed microfluidic flow path network via at least one of the at least two access ports of the platform structure.
- 18. The method as in claim 17,
wherein the hardenable liquid comprises a polymeric material.
- 19. The method as in claim 18,
wherein the polymeric material comprises an elastomeric silicone polymer.
- 20. The method as in claim 19,
wherein the silicone polymer comprises poly (dimethylsiloxane).
- 21. The method as in claim 17,
wherein the frame walls have throughbores communicating with the mold cavity, and the model construction is suspended in the mold cavity by seating at least some of the selected mold forms in the throughbores.
- 22. The method as in claim 21,
wherein the removal of the model construction from the platform structure includes removing at least some of the selected mold forms through the throughbores.
- 23. The method as in claim 22,
wherein the set of mold forms available for selection further comprises interconnect mold forms for interconnecting at least two of the elongated mold forms to each other.
- 24. The method as in claim 23,
wherein each of the interconnect mold forms have at least two connector ports in fluidic communication with each other, with each connector port adapted to seat an end portion of an elongated mold form therein.
- 25. The method as in claim 24,
wherein the removal of the model construction from the platform structure removes all selected mold forms except interconnect mold forms which remain embedded, whereby the fluidic flow path network is defined in part by the embedded interconnect mold forms.
- 26. The method as in claim 17,
wherein the construction of the model construction includes interconnecting a pre-formed microdevice to the selected mold forms in the mold cavity so that, upon hardening the liquid and removing the model construction, the microdevice remains embedded in the platform structure as part of the microfluidic flow path network and in fluidic communication therewith.
- 27. The method as in claim 17,
wherein the model construction of the microfluidic flow path network has meso-scale dimensions.
- 28. The method as in claim 27,
wherein at least one of the frame walls has an inner surface having micro-scale topographical features facing the mold cavity, and further comprising placing the meso-scale model construction in contact with the micro-scale topographical features so that, upon hardening the liquid and removing the model construction, the meso-scale microfluidic flow path network is in fluidic communication with micro-scale open cavities formed on a molded outer surface of the platform structure, whereby the meso-scale microfluidic flow path network serves to interface macro and micro-scale mediums.
- 29. The method as in claim 28,
further comprising bonding a substrate to the molded outer surface of the molded structure so as to enclose the micro-scale open cavities and thereby form a micro-scale microfluidic flow path network in fluidic communication with the meso-scale microfluidic flow path network.
- 30. The method as in claim 17,
wherein the connection between the pre-formed microfludic device and the platform structure is effected by bonding the pre-formed microdevice to the platform structure.
- 31. The method as in claim 30,
wherein the pre-formed microdevice is bonded to the platform structure via oxidation bonding.
- 32. The method as in claim 17,
wherein at least one of the access ports is a docking port adapted to captively seat the pre-formed microdevice, and where the connection between the pre-formed microfluidic device and the platform structure comprises docking the pre-formed microdevice in the corresponding docking port of the platform structure to establish fluidic communication with the formed microfluidic flow path network.
- 33. The method as in claim 32,
wherein the pre-formed microdevice is releasably docked in the at least one docking port of the platform structure.
- 34. The method as in claim 17,
wherein at least one of the access ports is a meso-scale reservoir cavity for receiving fluidic samples and formed from a block mold form placed in surface-to-surface contact with a frame wall.
- 35. An integrated microfluidic system formed according to the method of claim 17.
- 36. A system for mold-forming a microfluidic system platform, the system comprising:
a mold frame having frame walls surrounding a mold cavity; a set of interconnectable mold forms for use in molding hollow microfluidic features, the set of mold forms comprising elongated mold forms for use in molding microfluidic channels, and block mold forms for use in molding microfluidic cavities; and a three-dimensional model construction of a microfluidic flow path network suspended in the mold cavity via the frame walls and comprising releasably interconnected mold forms selected from the set of interconnectable mold forms, wherein, upon introducing and hardening a hardenable liquid in the mold cavity, a platform structure may be mold-formed having a shape of the mold cavity, and the microfluidic flow path network may be mold-formed in the platform structure having a shape of the model construction and having at least two access ports through which the model construction may be removed.
- 37. The system as in claim 36,
wherein the hardenable liquid comprises a polymeric material.
- 38. The system as in claim 37,
wherein the polymeric material comprises an elastomeric silicone polymer.
- 39. The system as in claim 38,
wherein the silicone polymer comprises poly (dimethylsiloxane).
- 40. The system as in claim 36,
wherein the frame walls have throughbores communicating with the mold cavity, and the model construction is suspended in the mold cavity by seating at least some of the selected mold forms in the throughbores, whereby removal of the model construction from the platform structure may be effected by removing at least some of the selected mold forms through the throughbores.
- 41. The system as in claim 36,
wherein the set of mold forms available for selection further comprises interconnect mold forms for interconnecting at least two of the elongated mold forms to each other.
- 42. The system as in claim 41,
wherein each of the interconnect mold forms have at least two connector ports in fluidic communication with each other, with each connector port adapted to seat an end portion of an elongated mold form therein.
- 43. The system as in claim 36,
wherein the set of mold forms available for selection further comprises alignment mold forms for molding alignment features in the platform structure so as to enable alignment with complementing alignment features of a second platform structure.
- 44. The system as in claim 36,
wherein the set of mold forms has meso-scale dimensions for constructing a meso-scale model construction of a meso-scale microfluidic flow path network.
- 45. The system as in claim 44,
wherein at least one of the frame walls has an inner surface having micro-scale topographical features facing the mold cavity, and where the meso-scale model construction contacts the micro-scale topographical features so that, upon hardening the liquid and removing the model construction, the meso-scale microfluidic flow path network is in fluidic communication with micro-scale open cavities formed on a molded outer surface of the platform structure, whereby the meso-scale microfluidic flow path network serves to interface macro and micro-scale mediums.
- 46. A microfluidic system platform comprising:
a molded structure having a seamless three-dimensional microfluidic flow path network molded therein, the microfluidic flow path network including at least two molded access ports for enabling fluidic communication with the microfluidic flow path network.
- 47. The microfluidic system platform as in claim 46,
wherein the molded structure is molded from a polymeric material.
- 48. The microfluidic system platform as in claim 47,
wherein the polymeric material comprises an elastomeric silicone polymer.
- 49. The microfluidic system platform as in claim 48,
wherein the silicone polymer comprises poly (dimethylsiloxane).
- 50. The microfluidic system platform as in claim 46,
wherein at least one of the access ports is a docking port adapted to captively seat a pre-formed microdevice therein so that fluidic communication may be established with the formed microfluidic flow path network.
- 51. The microfluidic system platform as in claim 46,
wherein the molded structure has at least one microdevice moldably embedded therein in fluidic communication with the microfluidic flow path network.
- 52. The microfluidic system platform as in claim 46,
wherein the microfluidic flow path network has meso-scale dimensions.
- 53. The microfluidic system platform as in claim 52,
wherein the molded structure has a molded outer surface having micro-scale open cavities in fluidic communication with the meso-scale microfluidic flow path network, whereby the meso-scale microfluidic flow path network serves to interface macro and micro-scale mediums.
- 54. The microfluidic system platform as in claim 53,
further comprising a substrate bonded to the molded outer surface of the molded structure so as to enclose the micro-scale open cavities and thereby form a micro-scale microfluidic flow path network in fluidic communication with the meso-scale microfluidic flow path network.
- 55. An integrated microfluidic system comprising:
a molded structure having a seamless three-dimensional microfluidic flow path network molded therein, the microfluidic flow path network including at least two molded access ports for enabling fluidic communication with the microfluidic flow path network; and at least one pre-formed microdevice externally connected to the molded structure to establish fluidic communication with the microfluidic flow path network through at least one of the access ports.
- 56. The integrated microfluidic system as in claim 55,
wherein the molded structure is molded from a polymeric material.
- 57. The integrated microfluidic system as in claim 56,
wherein the polymeric material comprises an elastomeric silicone polymer.
- 58. The integrated microfluidic system as in claim 57,
wherein the silicone polymer comprises poly (dimethylsiloxane).
- 59. The integrated microfluidic system as in claim 55,
wherein at least one of the access ports is a docking port adapted to captively seat the pre-formed microdevice, and where the at least one pre-formed microdevice is docked therein.
- 60. The method as in claim 59,
wherein the pre-formed microdevice is releasably docked in the at least one docking port of the molded structure.
- 61. The integrated microfluidic system as in claim 55,
wherein the molded structure has at least one microdevice embedded therein in fluidic communication with the microfluidic flow path network.
- 62. The integrated microfluidic system as in claim 55,
wherein the microfluidic flow path network has meso-scale dimensions.
- 63. The integrated microfluidic system as in claim 62,
wherein the molded structure has a molded outer surface having micro-scale open cavities in fluidic communication with the meso-scale microfluidic flow path network, whereby the meso-scale microfluidic flow path network serves to interface macro and micro-scale mediums.
- 64. The integrated microfluidic system as in claim 63,
further comprising a substrate bonded to the molded outer surface of the molded structure so as to enclose the micro-scale open cavities and thereby form a micro-scale microfluidic flow path network in fluidic communication with the meso-scale microfluidic flow path network.
RELATED APPLICATION
[0001] This application claims priority in provisional application filed on Mar. 26, 2001, entitled “Polymer-Based Platform for Microfluidic Systems” serial No. 60/278,864, by inventor(s) William J. Benett, Peter Krulevitch, Mariam N. Maghribi, Julie Hamilton, Klint A. Rose, and Amy W. Wang.
Government Interests
[0002] The United States Government has rights in this invention pursuant to Contract No. W-7405-ENG-46 between the United States Department of Energy and the University of California for the operation of Lawrence Livermore National Laboratory.
Provisional Applications (1)
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Number |
Date |
Country |
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60278864 |
Mar 2001 |
US |