Claims
- 1. A membrane structure for collection or separation of a biological material present in a fluid sample, the membrane structure comprising:
a mesoporous membrane comprising an inorganic material, the membrane having an active surface and a support surface, and a porous substrate adjacent the support surface of the mesoporous membrane such that, when in use, the fluid enters the membrane structure at the active surface, passes through the mesoporous membrane, and exits the membrane structure without being obstructed by the porous substrate.
- 2. The membrane structure of claim 1 wherein the active surface of the mesoporous membrane comprises an organic material.
- 3. The membrane structure of claim 2 wherein the organic material comprises a hydrophilic material.
- 4. The membrane structure of claim 2 wherein the organic material comprises a hydrophobic material.
- 5. The membrane structure of claim 2 wherein the organic material comprises a polymer.
- 6. The membrane structure of claim 5 wherein the organic material comprises a monolayer.
- 7. The membrane structure of claim 5 wherein the organic material comprises poly(ethylene glycol).
- 8. The membrane structure of claim 7 wherein the organic material further comprises a silane.
- 9. The membrane structure of claim 7 wherein the organic material further comprises a poly(ethylene)imine.
- 10. The membrane structure of claim 1 wherein the mesoporous membrane is characterized by a high elastic modulus.
- 11. The membrane structure of claim 1 wherein the inorganic material comprises alumina.
- 12. The membrane structure of claim 1 wherein the inorganic material comprises silicon.
- 13. The membrane structure of claim 1 wherein the mesoporous membrane comprises pores having a diameter of between about 1 nm and about 1000 nm.
- 14. The membrane structure of claim 1 wherein the mesoporous membrane comprises unfilled pores.
- 15. The membrane structure of claim 1 wherein the mesoporous membrane comprises pores at least partially filled with a sieving matrix.
- 16. The membrane structure of claim 1 further comprising a sieving matrix layer disposed on the active surface of the mesoporous membrane.
- 17. The membrane structure of claim 1 further comprising a sieving matrix layer interposed between the mesoporous membrane and the nanoporous support, such that fluid passing through the mesoporous membrane also passes through the sieving matrix layer prior to exiting the membrane structure.
- 18. The membrane structure of claim 1 wherein the porous substrate comprises pores having a diameter of between about 1 mm and about 5 mm.
- 19. A collector for collecting a biological material present in gaseous sample, the collector comprising a collection portion comprising:
a membrane structure as in claim 1; and at least one inlet and outlet providing a path for the flow of a gas through the membrane structure; wherein the collector is operable to collect the biological material on the active surface of the mesoporous membrane.
- 20. The collector of claim 19 further comprising an extraction portion in fluid communication with the membrane structure.
- 21. The collector of claim 20 further comprising an actuator for moving the membrane structure from the collection portion to the extraction portion.
- 22. The collector of claim 19 wherein the mesoporous membrane comprises pores having a diameter of at least about 200 nm.
- 23. A separator for separating biological materials present in a liquid sample comprising:
at least one membrane structure as in claim 1;at least one inlet and outlet providing a path for the flow of a liquid through the at least one membrane structure; wherein the separator is operable to separate the biological materials in the liquid sample.
- 24. The separator of claim 23 wherein the mesoporous membrane in the at least one membrane structure comprises pores having a diameter of at most about 200 nm.
- 25. The separator of claim 23 wherein the at least one membrane structure comprises first and second membrane structures, said first and second membrane structures comprising mesoporous membranes having different pore sizes.
- 26. A system for detecting a biological material present in a gaseous sample, the system comprising:
a collector comprising (i) a collector portion comprising a membrane structure as in claim 1; at least one inlet and outlet providing a path for the flow of a gas through the membrane structure, wherein the collector is operable to collect the biological materials on the active surface of the mesoporous membrane; and (ii) an extraction portion in fluid communication with the membrane structure, wherein the extraction portion is operable to remove the biological materials from the active surface of the mesoporous membrane; and a separator in fluid communication with the collector, wherein the separator comprises at least one membrane structure as in claim 1; and at least one inlet and outlet providing a path for the flow of a liquid through the at least one membrane structure; wherein the collector is configured to provide a liquid sample comprising the extracted biological materials to the separator, and further wherein the separator is operable to receive the liquid sample from the collector and separate the biological materials in the liquid sample.
- 27. The system of claim 26 further comprising a detector in fluid communication with the separator, wherein the detector is configured to receive the separated biological materials from the separator, and wherein the detector is operable to detect and analyze the separated biological materials.
- 28. The system of claim 26 wherein the active surface of the mesoporous membrane of at least one of the collector or the separator comprises an organic material.
- 29. The system of claim 26 wherein the collector further comprises an actuator for moving the membrane structure from the collection portion to the extraction portion.
- 30. The system of claim 26 wherein the extraction portion of the collector comprises a transducer operable to extract the biological materials from the active surface of the mesoporous membrane.
- 31. A method for collecting an airborne biological material, the method comprising:
providing a collector comprising a membrane structure comprising a mesoporous membrane comprising an inorganic material, the mesoporous membrane having an active surface and a support surface, and a porous substrate adjacent the support surface of the mesoporous membrane; directing a stream of gas through the membrane structure such that the gas stream enters the membrane structure at the active surface, passes through the mesoporous membrane, and exits the membrane structure without being obstructed by the porous substrate; collecting a sample from the gas stream on the active surface of the mesoporous membrane; and removing the sample from the active surface of the mesoporous membrane.
- 32. The method of claim 31 further comprising detecting the biological material in the sample.
- 33. The method of claim 31 wherein the active surface of the mesoporous membrane comprises an organic material selected to improve removal of the sample from the active surface of the mesoporous membrane.
- 34. The method of claim 31 wherein the collector comprises a collection portion and extraction portion, the method further comprising transferring a collected sample from the collection portion to the extraction portion prior to removing the sample from the mesoporous membrane.
- 35. The method of claim 31, wherein removing the sample from the active surface of the mesoporous membrane is accomplished in the presence of a liquid.
- 36. The method of claim 35 wherein the liquid comprises an aqueous liquid.
- 37. The method of claim 35 wherein the liquid comprises an organic solvent.
- 38. The method of claim 35 further comprising using electrostatic or ultrasonic techniques to assist in removal of the sample from the active surface of the mesoporous membrane.
- 39. The method of claim 31 wherein the steps of sample collection and sample removal alternate such that the membrane structure is continuously reused.
- 40. A method for separating biological materials in a liquid sample, the method comprising:
providing a separator comprising at least a first membrane structure comprising (i) a first mesoporous membrane comprising an inorganic material, the first mesoporous membrane having an active surface and a support surface and comprising pores having a diameter selected so as to exclude a first component in the liquid sample and (ii) a first porous substrate adjacent the support surface of the mesoporous membrane; and contacting the liquid sample with the active surface of the first mesoporous membrane such that the liquid enters the first membrane structure at the active surface, passes through the first mesoporous membrane, and exits the first membrane structure without being obstructed by the first porous substrate, such that the first component does not pass through the first mesoporous membrane, resulting in separation of the biological materials.
- 41. The method of claim 40 wherein the separator comprises a second membrane structure disposed in series with the first membrane structure, the second membrane structure comprising i) a second mesoporous membrane comprising an inorganic material, the second membrane having an active surface and a support surface and comprising pores having a diameter selected so as to exclude a second component in the liquid sample and (ii) a second porous substrate adjacent the support surface of the second mesoporous membrane, wherein the liquid sample is further contacted with the active surface of the second mesoporous membrane such that the liquid enters the second membrane structure at the active surface, passes through the second mesoporous membrane, and exits the second membrane structure without being obstructed by the second porous substrate, such that the second component does not pass through the second mesoporous membrane, resulting in a further separation of the biological materials.
- 42. The method of claim 40 further comprising detecting a biological material in the sample.
- 43. The method of claim 40 wherein the active surface of the mesoporous membrane comprises an organic material selected to reduce adhesion of the sample to the active surface of the mesoporous membrane, enabling continuous reuse of the membrane.
- 44. A method for detecting an airborne biological material comprising:
providing a collector comprising a collector membrane structure comprising a mesoporous collector membrane comprising an inorganic material, the collector membrane having an active surface and a support surface, and a porous substrate adjacent the support surface of the collector membrane; directing a stream of gas through the collector membrane structure such that the gas stream enters the collector membrane structure at the active surface, passes through the collector membrane, and exits the collector membrane structure without being obstructed by the porous substrate; collecting a sample from the gas stream on the active surface of the collector membrane, wherein the sample comprises the biological material; and removing the sample from the active surface of the collector membrane to yield a liquid sample comprising the biological material; providing a separator comprising at least a first separator membrane structure comprising (i) a first mesoporous separator membrane comprising an inorganic material, the first separator membrane having an active surface and a support surface and comprising pores having a diameter selected so as to exclude a first component in the liquid sample and (ii) a first porous substrate adjacent the support surface of the mesoporous membrane; and contacting the liquid sample with the active surface of the first separator membrane such that the liquid enters the first separator membrane structure at the active surface, passes through the first separator membrane, and exits the first separator membrane structure without being obstructed by the first porous substrate, such that the first component does not pass through the first separator membrane, resulting in separation of the biological materials; and detecting the biological material.
- 45. The method of claim 44 wherein the separator comprises a second separator membrane structure disposed in series with the first separator membrane structure, the second separator membrane structure comprising i) a second mesoporous separator membrane comprising an inorganic material, the second separator membrane having an active surface and a support surface and comprising pores having a diameter selected so as to exclude a second component in the liquid sample and (ii) a second porous substrate adjacent the support surface of the second separator membrane, wherein the liquid sample is further contacted with the active surface of the second separator membrane such that the liquid enters the second separator membrane structure at the active surface, passes through the second separator membrane, and exits the second separator membrane structure without being obstructed by the second porous substrate, such that the second component does not pass through the second separator membrane, resulting in a further separation of the biological materials.
- 46. The method of claim 44 wherein the active surface of the collector membrane comprises an organic material selected to improve removal of the sample from the active surface of the collector membrane, enabling continuous reuse of the collector membrane.
- 47. The method of claim 44 wherein the active surface of the separator membrane comprises an organic material selected to reduce adhesion of the sample to the active surface of the collector membrane, enabling continuous reuse of the separator membrane.
- 48. A method for making a modified mesoporous membrane comprising:
providing a mesoporous membrane comprising alumina; adsorbing poly(ethyleneimine) onto a surface of the mesoporous membrane to yield an activated membrane surface; and reacting N-hydroxysuccinimidyl (NHS) ester of poly(ethylene) glycol with a activated membrane surface to yield the modified mesoporous membrane.
- 49. A method for making a modified mesoporous membrane comprising:
providing a mesoporous membrane comprising alumina; reacting trimethoxysilane with poly(ethylene glycol) in anhydrous toluene in the presence of triethylamine to yield (ω-methoxy terminated PEG) trimethoxysilane; and reacting (ω-methoxy terminated PEG) trimethoxysilane with a surface of the mesoporous membrane to yield the modified mesoporous membrane.
Parent Case Info
[0001] This application claims the benefit of U.S. Provisional Application Serial No. 60/388,239, filed Jun. 13 2002, and U.S. Provisional Application Serial No. 60/340,012, filed Dec. 6 2001, which are incorporated herein by reference in their entireties.
STATEMENT OF GOVERNMENT RIGHTS
[0002] This invention was made with government support under a grant from the Department of Navy, Grant No. NAVSEA/NSWC CRANE N000164-00-C-0047. The U.S. Government has certain rights in this invention.
Provisional Applications (2)
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Number |
Date |
Country |
|
60388239 |
Jun 2002 |
US |
|
60340012 |
Dec 2001 |
US |