Claims
- 1. A nanofilm comprising coupled oriented amphiphilic macrocyclic modules.
- 2. The nanofilm of claim 1 wherein the modules are selected from the group consisting of Hexamer 1a, Hexamer 1dh, Hexamer 3j-amine, Hexamer 1jh, Hexamer 1jh-AC, Hexamer 2j-amine/ester, Hexamer 1dh-acryl, Octamer 5jh-aspartic, Octamer 4jh-acryl, and mixtures thereof.
- 3. The nanofilm of claim 1 wherein the modules are Hexamer 1dh.
- 4. The nanofilm of claim 1 wherein the modules are coupled through reactive functional groups of the modules.
- 5. The nanofilm of claim 1 wherein the modules are coupled to at least one linker molecule.
- 6. The nanofilm of claim 5 wherein the at least one linker molecule is selected from the group consisting of
- 7. The nanofilm of claim 1 wherein the amphiphilic macrocyclic modules have hydrophobic tails which are cleavable by chemical, thermal, photochemical, electrochemical, or irradiative methods.
- 8. The nanofilm of claim 1 coupled by chemical, thermal, photochemical, electrochemical, or irradiative methods.
- 9. The nanofilm of claim 1 having a thickness of less than about 30 nanometers.
- 10. The nanofilm of claim 1 having a thickness of less than about 4 nanometers.
- 11. The nanofilm of claim 1 having a thickness of less than about 1 nanometers.
- 12. The nanofilm of claim 1 having the following filtration function:
- 13. The nanofilm of claim 1 having the following filtration function:
- 14. The nanofilm of claim 1 wherein the nanofilm is impermeable to viruses and larger species.
- 15. The nanofilm of claim 1 wherein the nanofilm is impermeable to immunoglobulin G and larger.
- 16. The nanofilm of claim 1 wherein the nanofilm is impermeable to albumin and larger species.
- 17. The nanofilm of claim 1 wherein the nanofilm is impermeable to β2-Microglobulin and larger species.
- 18. The nanofilm of claim 1 wherein the nanofilm is permeable only to water and smaller species.
- 19. The nanofilm of claim 1 having a molecular weight cut-off of 13 kDa.
- 20. The nanofilm of claim 1 having a molecular weight cut-off of 190 Da.
- 21. The nanofilm of claim 1 having a molecular weight cut-off of 100 Da.
- 22. The nanofilm of claim 1 having a molecular weight cut-off of 45 Da.
- 23. The nanofilm of claim 1 having a molecular weight cut-off of 20 Da.
- 24. The nanofilm of claim 1 having high permeability for water molecules and Na+, K+, and Cs+ in water.
- 25. The nanofilm of claim 24 having low permeability for glucose and urea.
- 26. The nanofilm of claim 1 having high permeability for water molecules and Cl− in water.
- 27. The nanofilm of claim 1 having high permeability for water molecules and K+ in water, and low permeability for Na+ in water.
- 28. The nanofilm of claim 1 having high permeability for water molecules and Na+ in water, and low permeability for K+ in water.
- 29. The nanofilm of claim 1 having low permeability for urea, creatinine, Li+, Ca2+, and Mg2+ in water.
- 30. The nanofilm of claim 29 having high permeability for Na+, K+, hydrogen phosphate, and dihydrogen phosphate in water.
- 31. The nanofilm of claim 29 having high permeability for Na+, K+, and glucose in water.
- 32. The nanofilm of claim 1 having low permeability for myoglobin, ovalbumin, and albumin in water.
- 33. The nanofilm of claim 1 having high permeability for organic compounds and low permeability for water.
- 34. The nanofilm of claim 1 having low permeability for water molecules and high permeability for helium and hydrogen gas.
- 35. A nanofilm barrier comprising at least two layers of the nanofilm of claim 1.
- 36. The nanofilm barrier of claim 35 further comprising at least one spacing layer between any two of the nanofilm layers.
- 37. The nanofilm barrier of claim 36 wherein the spacing layer comprises a polymer or gel layer.
- 38. The nanofilm of claim 1 deposited on a substrate.
- 39. The nanofilm of claim 38 wherein the substrate is porous.
- 40. The nanofilm of claim 38 wherein the substrate is non-porous.
- 41. The nanofilm of claim 1 having surface attachment groups.
- 42. The nanofilm of claim 41 wherein the surface attachment groups are selected from the group consisting of amino, hydroxyl, halo, thiol, alkynyl, magnesium halo, aldehyde, —CH═C(CH3)2, vinyl, —(C═C)—CH═CH2, —OC(O)CH(CH3)2, —OC(O)CH═CH2, —NC(O)CH═CH2, carboxylate, isocyanate, epoxide, streptavidin, and mixtures thereof.
- 43. The nanofilm of claim 1 covalently bonded to a substrate through surface attachment groups.
- 44. The nanofilm of claim 1 bonded to a substrate through ionic interactions.
- 45. The nanofilm of claim 1, further comprising a substrate; wherein the nanofilm is coupled to the substrate through biotin-streptavidin coupling.
- 46. A method for filtration comprising using the nanofilm of claim 1 to separate components from fluid.
- 47. A nanofilm comprising oriented macrocyclic modules deposited on a substrate using a Langmuir trough.
- 48. The nanofilm of claim 47 wherein the modules are selected from the group consisting of Hexamer 1a, Hexamer 1dh, Hexamer 3j-amine, Hexamer 1jh, Hexamer 1jh-AC, Hexamer 2j-amine/ester, Hexamer 1dh-acryl, Octamer 5jh-aspartic, Octamer 4jh-acryl, and mixtures thereof.
- 49. A nanofilm comprising coupled oriented amphiphilic molecules and oriented amphiphilic macrocyclic modules.
- 50. The nanofilm of claim 49 wherein the amphiphilic molecules comprise at least two different amphiphilic molecules.
- 51. The nanofilm of claim 50 wherein the amphiphilic macrocyclic modules comprise at least two different amphiphilic macrocyclic modules.
- 52. A nanofilm comprising oriented amphiphilic molecules coupled through a hydrophilic group wherein the amphiphilic molecules are selected from the group consisting of C7 to C40 alkylamines, C7 to C40 alkylthiols, and mixtures thereof.
- 53. A nanofilm comprising coupled oriented macrocyclic modules, made by the process comprising: (a) providing a nanofilm comprising coupled oriented macrocyclic modules, wherein the coupled oriented macrocyclic modules comprise a hydrophobic region which is cleavable by chemical, thermal, photochemical, electrochemical, or irradiative methods; and (b) cleaving the hydrophobic region.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application claims priority to U.S. Provisional Application Ser. No. 60/383,236, filed May 22, 2002, and is a continuation-in-part of U.S. application Ser. No. 10/226,400, filed Aug. 23, 2002, which is a continuation-in-part of U.S. application Ser. No. 10/071,377, filed Feb. 7, 2002, herein incorporated by reference in their entirety.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60383236 |
May 2002 |
US |
Continuation in Parts (2)
|
Number |
Date |
Country |
Parent |
10226400 |
Aug 2002 |
US |
Child |
10359894 |
Feb 2003 |
US |
Parent |
10071377 |
Feb 2002 |
US |
Child |
10226400 |
Aug 2002 |
US |