Claims
- 1. A method of preparing a porous material, comprising the steps of:
mixing at least one non-degradable polymer with a solvent to provide a polymer/solvent mixture; gelling the mixture; and treating the gel under predetermined conditions whereby a substantially solvent free porous material is created having a porosity greater than about 80%, wherein the resultant porous material is mechanically strong, has a high specific surface area, and has an architecture comprising at least one of nano fibrous, micro fibrous, non fibrous, complex porous structure with nano fibrous architecture, and mixtures thereof.
- 2. The method as defined in claim 1 wherein the solvent comprises at least one of water, acetic acid, formic acid, tetrahydrofuran (THF), dimethylsulfoxide (DMSO), dioxane, benzene, and mixtures thereof.
- 3. The method as defined in claim 2 wherein the solvent comprises a mixture of at least two solvents.
- 4. The method as defined in claim 3 wherein the solvent comprises a mixture of acetic acid and water.
- 5. The method as defined in claim 3 wherein the solvent comprises a mixture of formic acid and water.
- 6. The method as defined in claim 3 wherein the solvent comprises a mixture of formic acid and THF.
- 7. The method as defined in claim 3 wherein the solvent comprises a mixture of acetic acid, formic acid and water.
- 8. The method as defined in claim 2 wherein the solvent comprises DMSO.
- 9. The method as defined in claim 1 wherein the at least one non-degradable polymer comprises at least one of natural or synthetic hydrophilic polymers, natural or synthetic hydrophobic polymers, natural or synthetic amphiphilic polymers, and mixtures thereof.
- 10. The method as defined in claim 9 wherein the at least one non-degradable polymer is a hydrophilic polymer comprising at least one of polyvinyl alcohol, polyethylene oxide, polymethacrylic acid (PMAA), polyacrylic acid, polyethylene glycol, alginate, collagen, gelatin, hyaluronic acid, and mixtures thereof.
- 11. The method as defined in claim 9 wherein the at least one non-degradable polymer is a hydrophobic polymer comprising at least one of polytetrafluoroethylene (PTFE), polyvinylchloride (PVC), polyamides (PA, Nylons), polyethylenes (PE), polysulfones, polyethersulphone, polypropylenes (PP), silicon rubbers, polystyrenes, polycarbonates, polyesters, polyacrylonitrile (PAN), polyimides, polyetheretherketone (PEEK), polymethylmethacrylate (PMMA), polyvinylacetate (PVAc), polyphenylene oxide, cellulose and its derivatives, polypropylene oxide (PPO), polyvinylidene fluoride (PVDF), polybutylene, and mixtures thereof.
- 12. The method as defined in claim 1, further comprising the step of heating the mixture to a temperature ranging between about room temperature and above room temperature before gelling.
- 13. The method as defined in claim 12 wherein the temperature ranges between about room temperature and about 100° C.
- 14. The method as defined in claim 1 wherein the gelling step is accomplished by rapidly transferring the mixture to a cooling device maintained at a temperature between about room temperature and about liquid nitrogen.
- 15. The method as defined in claim 14, wherein the gel treating step comprises the steps of:
immersing the gel in a liquid to cause solvent exchange, wherein the liquid is a poor or non-solvent for the non-degradable polymer; removing the gel from the liquid; freezing the gel at a predetermined temperature, the temperature ranging between about room temperature and about liquid nitrogen; and freeze drying the frozen gel under vacuum.
- 16. The method as defined in claim 1, wherein the porosity is greater than approximately 85%.
- 17. The method as defined in claim 1, wherein the porosity is greater than approximately 90%.
- 18. The method as defined in claim 1, wherein the porosity is approximately 98%.
- 19. The method as defined in claim 1 wherein the porous material has a specific surface area greater than about 5 m2/g.
- 20. The method as defined in claim 19 wherein the porous material has a specific surface area ranging between about 10 m2/g and about 500 m2/g.
- 21. The method as defined in claim 20 wherein the porous material has a specific surface area ranging between about 20 m2/g and about 200 m2/g.
- 22. The method as defined in claim 1 wherein the porous material comprises pores having a size and connections therebetween, wherein the pore sizes range between about 30 μm and about 300 μm, and wherein the connections range in size between about 30 μm and about 300 μm.
- 23. The method as defined in claim 22 wherein the porous material comprises pores having a size and connections therebetween, wherein the pore sizes range between about 50 μm and about 100 μm, and wherein the connections range in size between about 50 μm and about 100 μm.
- 24. The method as defined in claim 4 wherein the polymer/solvent mixture contains about 10% polyamide-6,6.
- 25. The method as defined in claim 6 wherein the polymer/solvent mixture contains about 5% polyamide-6,6.
- 26. The method as defined in claim 5 wherein the polymer/solvent mixture contains about 5% of a 1:1 blend of polyamide-6,6 and polyamide-6.
- 27. The method as defined in claim 8 wherein the polymer/solvent mixture contains between about 5% and about 10% polyvinylidene fluoride.
- 28. The method as defined in 25 wherein the compressive modulus of the porous material ranges between about 5.22±0.77 kPa and about 7.36±4.11 kPa.
- 29. A method of preparing a porous material, comprising the steps of:
mixing at least one non-degradable polymer with a solvent to provide a polymer/solvent mixture, wherein the at least one non-degradable polymer comprises at least one of natural or synthetic hydrophilic polymers, natural or synthetic hydrophobic polymers, natural or synthetic amphiphilic polymers, and mixtures thereof; heating the mixture to a temperature ranging between about room temperature and about 100° C.; gelling the mixture by rapidly transferring the mixture to a cooling device maintained at a temperature between about room temperature and about liquid nitrogen; and treating the gel under predetermined conditions whereby a substantially solvent free porous material is created having a porosity greater than about 85%; wherein the resultant porous material is mechanically strong and has a high specific surface area ranging between about 10 m2/g and about 1000 m2/g, and has an architecture comprising at least one of nano fibrous, micro fibrous, non fibrous, complex porous structure with nano fibrous architecture, and mixtures thereof; and wherein the porous material comprises pores having a size and connections therebetween, wherein the pore sizes range between about 30 μm and about 300 μm, and wherein the connections range in size between about 30 μm and about 300 μm.
- 30. The method as defined in claim 29 wherein the solvent comprises at least one of water, acetic acid, formic acid, tetrahydrofuran (THF), dimethylsulfoxide (DMSO), dioxane, benzene, and mixtures thereof.
- 31. The method as defined in claim 29 wherein the at least one non-degradable polymer is a hydrophilic polymer comprising at least one of polyvinyl alcohol, polyethylene oxide, polymethacrylic acid (PMAA), polyacrylic acid, polyethylene glycol, alginate, collagen, gelatin, hyaluronic acid, and mixtures thereof.
- 32. The method as defined in claim 29 wherein the at least one non-degradable polymer is a hydrophobic polymer comprising at least one of polytetrafluoroethylene (PTFE), polyvinylchloride (PVC), polyamides (PA, Nylons), polyethylenes (PE), polysulfones, polyethersulphone, polypropylenes (PP), silicon rubbers, polystyrenes, polycarbonates, polyesters, polyacrylonitrile (PAN), polyimides, polyetheretherketone (PEEK), polymethylmethacrylate (PMMA), polyvinylacetate (PVAc), polyphenylene oxide, cellulose and its derivatives, polypropylene oxide (PPO), polyvinylidene fluoride (PVDF), polybutylene, and mixtures thereof.
- 33. The method as defined in claim 29, wherein the gel treating step comprises the steps of:
immersing the gel in a liquid to cause solvent exchange, wherein the liquid is a poor or non-solvent for the non-degradable polymer; removing the gel from the liquid; freezing the gel at a predetermined temperature, the temperature ranging between about room temperature and about liquid nitrogen; and freeze drying the frozen gel under vacuum.
- 34. The method as defined in claim 29, wherein the porosity is greater than approximately 90%.
- 35. The method as defined in claim 29, wherein the porosity is approximately 98%.
- 36. The method as defined in claim 29 wherein the porous material has a specific surface area ranging between about 10 m2/g and about 500 m2/g.
- 37. The method as defined in claim 36 wherein the porous material has a specific surface area ranging between about 20 m2/g and about 200 m2/g.
- 38. The method as defined in claim 29 wherein the porous material comprises pores having a size and connections therebetween, wherein the pore sizes range between about 50 μm and about 100 μm, and wherein the connections range in size between about 50 μm and about 100 μm.
- 39. The method as defined in claim 29 wherein the solvent comprises a mixture of acetic acid and water, and wherein the polymer/solvent mixture contains about 5% polyamide-6.
- 40. The method as defined in claim 29 wherein the solvent comprises a mixture of formic acid and water, and wherein the polymer/solvent mixture contains about 5% polyamide-6,6.
- 41. The method as defined in claim 29 wherein the solvent comprises a mixture of formic acid and THF, and wherein the polymer/solvent mixture contains about 5% polyamide-6,6.
- 42. The method as defined in claim 29 wherein the solvent comprises a mixture of acetic acid, formic acid and water, and wherein the polymer/solvent mixture contains about 5% polyamide-6,6.
- 43. The method as defined in claim 29 wherein the solvent comprises DMSO, and wherein the polymer/solvent mixture contains between about 5% and about 10% polyvinylidene fluoride.
- 44. The method as defined in claim 29 wherein the solvent comprises a mixture of formic acid and water, and wherein the polymer/solvent mixture contains about 5% of a 1:1 blend of polyamide-6,6 and polyamide-6.
- 45. A porous material, comprising:
at least one non-degradable polymer; and pores having a size and connections therebetween, wherein the pore sizes range between about 30 μm and about 300 μm, and wherein the connections range in size between about 30 μm and about 300 μm, wherein the porous material porosity is greater than about 80%; wherein the porous material is mechanically strong and has a high specific surface area ranging between about 10 m2/g and about 1000 m2/g, and has an architecture comprising at least one of nano fibrous, micro fibrous, non fibrous, complex porous structure with nano fibrous architecture, and mixtures thereof.
- 46. The porous material as defined in claim 45 wherein the at least one non-degradable polymer comprises at least one of natural or synthetic hydrophilic polymers, natural or synthetic hydrophobic polymers, natural or synthetic amphiphilic polymers, and mixtures thereof.
- 47. The porous material as defined in claim 46 wherein the at least one non-degradable polymer is a hydrophilic polymer comprising at least one of polyvinyl alcohol, polyethylene oxide, polymethacrylic acid (PMAA), polyacrylic acid, polyethylene glycol, alginate, collagen, gelatin, hyaluronic acid, and mixtures thereof.
- 48. The porous material as defined in claim 46 wherein the at least one non-degradable polymer is a hydrophobic polymer comprising at least one of polytetrafluoroethylene (PTFE), polyvinylchloride (PVC), polyamides (PA, Nylons), polyethylenes (PE), polysulfones, polyethersulphone, polypropylenes (PP), silicon rubbers, polystyrenes, polycarbonates, polyesters, polyacrylonitrile (PAN), polyimides, polyetheretherketone (PEEK), polymethylmethacrylate (PMMA), polyvinylacetate (PVAc), polyphenylene oxide, cellulose and its derivatives, polypropylene oxide (PPO), polyvinylidene fluoride (PVDF), polybutylene, and mixtures thereof.
- 49. The porous material as defined in claim 45 wherein the porosity is greater than approximately 85%.
- 50. The porous material as defined in claim 49, wherein the porosity is greater than approximately 90%.
- 51. The porous material as defined in claim 50, wherein the porosity is approximately 98%.
- 52. The porous material as defined in claim 45 wherein the porous material has a specific surface area ranging between about 10 m2/g and about 500 m2/g.
- 53. The porous material as defined in claim 52 wherein the porous material has a specific surface area ranging between about 20 m2/g and about 200 m2/g.
- 54. The porous material as defined in claim 45 wherein the porous material comprises pores having a size and connections therebetween, wherein the pore sizes range between about 50 μm and about 100 μm, and wherein the connections range in size between about 50 μm and about 100 μm.
- 55. A porous material formed by the process of claim 1.
- 56. A porous material formed by the process of claim 29.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit of U.S. Provisional Patent application Serial No. 60/330,335, filed Oct. 17, 2001.
Provisional Applications (1)
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Number |
Date |
Country |
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60330335 |
Oct 2001 |
US |