Claims
- 1. A method of reversibly modifying a property of a surface, comprising:
depositing a nanolayer of a material on a substrate; and applying an external stimulus to the nanolayer, wherein:
when the stimulus is applied, the nanolayer shifts from a first conformation state to a second conformation state.
- 2. The method of claim 1, wherein, when the nanolayer is in the first conformation state, the surface is characterized by a first property, and, when the nanolayer is in the second conformation state, the surface is characterized by a second property.
- 3. The method of claim 1, wherein the change in conformation state comprises a member of a change from a cis to a trans configured double bond, rotating a molecular group about an axis, opening a hinged molecular group, bending a molecular chain, and unbending a molecular chain.
- 4. The method of claim 1, wherein the external stimulus is selected from the group consisting of application of a voltage, a change in an applied voltage, a change in temperature, a change in pH, exposure to UV light, exposure to electromagnetic radiation, application of a magnetic field, removal of a magnetic field, a change in capacitance, application of an electrostatic charge, removal of an electrostatic charge, and any combination of the above.
- 5. The method of claim 1, wherein the external stimulus is selected from the group consisting of exposure to a ligand, exposure to a biomolecule, exposure to a small molecule, exposure to a bioactive agent, exposure to an ion, and any combination of the above.
- 6. The method of claim 1, wherein the property is selected from the group consisting of degree of hydrophilicity, degree of hydrophobicity, electrical charge, chemical composition, polarizability, transparancy, conductivity, light absorption, affinity for a biomolecule, affinity for a small molecule, affinity for a bioactive agent, osmotic potential, zeta potential, surface energy, coefficient of friction, tackiness, and any combination of the above.
- 7. The method of claim 1, wherein the substrate comprises a member of the group consisting of metal, ceramic, glass, non-crystalline solid, semiconductor, polymer, composite, and any combination thereof.
- 8. The method of claim 7, further comprising pretreating a surface of the substrate before the step of depositing.
- 9. The method of claim 8, wherein pretreating comprises a member of depositing a material on at least a portion of the surface, oxidizing at least a portion of the surface, etching at least a portion of the surface, and any combination thereof.
- 10. The method of claim 1, wherein the step of depositing comprises using at least one technique selected from chemical vapor deposition, metal oxide chemical vapor deposition, sputtering, sol-gel techniques, evaporation, pulsed laser deposition, and ion beam assisted deposition, molecular self assembly, soft lithography, layer by layer deposition and Langmuir Blodgett techniques.
- 11. The method of claim 10, wherein the nanolayer comprises a self-assembled monolayer comprising a plurality of molecular assemblies each having a cleavable endgroup, and wherein the method further comprises removing the endgroup, wherein the change in conformation state comprises causing a terminal group of the molecular assembly to bend towards the substrate.
- 12. The method of claim 1, wherein the nanolayer comprises a plurality of molecular assemblies each comprising at least first and second information carriers, wherein:
the molecular assembly includes at least one active group that interacts with the external stimulus, the molecular assembly includes at least one tether, wherein, when the active group interacts with the external stimulus, the tether shifts from a first conformation to a second conformation, when the tether has the first conformation, the properties of the surface are substantially determined by the first information carrier, when the tether has the second conformation, the properties of the surface are substantially determined by the second information carrier, and a member of the first information carrier, the second information carrier, and both information carriers may also be a member of the at least one tether, the at least one active group, and both of the above.
- 13. The method of claim 12, wherein the nanolayer comprises molecular assemblies having a plurality of compositions.
- 14. The method of claim 13, wherein the molecular assemblies are disposed substantially randomly within the nanolayer.
- 15. The method of claim 13, wherein:
the nanolayer comprises first and second molecular assemblies having first and second compositions, the first and second molecular assemblies are deposited in separate regions, and the external stimulus may be separately applied to the individual regions.
- 16. The method of claim 12, wherein the molecular assembly comprises two tethers.
- 17. The method of claim 16, wherein the first and second conformations of the molecular assembly are related by a 180° rotation.
- 18. The method of claim 12, wherein the molecular assemblies comprise a hinged amphiphile, wherein, in the first conformation, the amphiphile is folded closed to define an interior and an exterior, and, in the second, the amphiphile is at least partially open.
- 19. The method of claim 12, wherein the molecular assemblies comprise paired hinged amphiphiles each having first and second arms, wherein, in the first conformation, the amphiphiles are folded closed, and, in the second conformation, the second arms of the paired amphiphiles unfold from the first arms, wherein the first arms of the paired amphiphiles are bonded to each other through non-covalent interactions in both the first and second conformations.
- 20. The method of claim 12, wherein the active group comprises a member of a charged molecular group, a polar molecular group, a dipolar molecular group, an aromatic group, a non-polar molecular group, a magnetic particle, a magnetic atom, a magnetic ion, and any combination of the above.
- 21. The method of claim 20, wherein the magnetic particle is coated with a surfactant comprising one of the information carriers.
- 22. The method of claim 1, further comprising:
adsorbing a member of a small molecule, a bioactive agent, and a biomolecule onto the nanolayer; and releasing the member from at least a portion of the nanolayer by the step of applying.
- 23. The method of claim 22, wherein the step of adsorbing comprises applying a second external stimulus to the nanolayer, wherein the second external stimulus causes the nanolayer to change from the second conformation state to the first conformation state, wherein, in the first conformation state, the member is retained substantially within the nanolayer.
- 24. The method of claim 1, wherein the method further comprises adapting the substrate such that the external stimulus may be applied to a portion of the nanolayer.
- 25. The method of claim 1, wherein the external stimulus is applied to a portion of the nanolayer, and wherein the portion of the nanolayer to which the external stimulus is applied shifts from the first to the second conformation state.
- 26. The method of claim 1, further comprising depositing a liquid crystal over the nanolayer, wherein a change in the conformation state of the nanolayer causes a change in orientation of the liquid crystal.
- 27. A surface with reversibly switchable properties, comprising:
a nanolayer of a material characterized in that, when an external stimulus is applied, the nanolayer switches from a first conformation state to a second conformation state, wherein,
when the nanolayer is in the first conformation state, the surface is characterized by a first property, and when the nanolayer is in the second conformation state, the surface is characterized by a second property.
- 28. The surface of claim 27, wherein the change in conformation state comprises a member of a change from a cis to a trans double bond, rotating a molecular group about an axis, unfolding a folded molecular group, and bending a molecular chain.
- 29. The surface of claim 27, wherein the stimulus is selected from application of a voltage, a change in an applied voltage, a change in temperature, a change in pH, exposure to UV light, application of a magnetic field, removal of a magnetic field, a change in capacitance, application of an electrostatic charge, removal of an electrostatic charge, and any combination of the above.
- 30. The surface of claim 27, wherein the stimulus is selected from exposure to a ligand, exposure to a biomolecule, exposure to a small molecule, exposure to a bioactive agent, exposure to an ion, and any combination of the above.
- 31. The surface of claim 27, wherein the property is selected from degree of hydrophilicity, degree of hydrophobicity, electrical charge, chemical composition, polarizability, transparency, conductivity, light absorption, osmotic potential, zeta potential, surface energy, coefficient of friction, tackiness, and any combination of the above.
- 32. The surface of claim 27, wherein the nanolayer is disposed on a substrate selected from metal, ceramic, glass, non-crystalline solid, semiconductor, polymer, composite, and any combination thereof.
- 33. The surface of claim 32, wherein at least a portion of the substrate is a member of etched, oxidized, coated with a material, or any combination of the above.
- 34. The surface of claim 32, wherein the substrate is adapted and constructed to permit the external stimulus to be applied to a portion of the nanolayer, which portion switches from the first conformation state to the second conformation state.
- 35. The surface of claim 32, wherein the nanolayer comprises a self-assembled monolayer comprising a plurality of molecular assemblies from which an endgroup has been removed after the molecular assemblies were disposed on the substrate, wherein the change in conformation comprises bending a terminal portion of the molecular assembly towards the substrate.
- 36. The surface of claim 27, wherein the nanolayer comprises a plurality of molecular assemblies each comprising at least first and second information carriers, wherein:
the molecular assembly includes at least one active group that interacts with the external stimulus, the molecular assembly includes at least one tether, wherein, when the active group interacts with the external stimulus, the tether shifts from a first conformation to a second conformation, when the tether has the first conformation, the properties of the surface are substantially determined by the first information carrier, when the tether has the second conformation, the properties of the surface are substantially determined by the second information carrier, and a member of the first information carrier, the second information carrier, and both information carriers may also be a member of the at least one tether, the at least one active group, and both of the above.
- 37. The surface of claim 36, wherein the nanolayer comprises molecular assemblies having a plurality of compositions.
- 38. The surface of claim 37, wherein the molecular assemblies are disposed substantially randomly within the nanolayer.
- 39. The surface of claim 37, wherein:
the nanolayer comprises first and second molecular assemblies having first and second compositions, the first and second molecular assemblies are deposited in separate regions, and the external stimulus may be separately applied to the individual regions.
- 40. The surface of claim 36, wherein the molecular assembly comprises two tethers.
- 41. The surface of claim 40, wherein the two conformations are related by a 180° rotation.
- 42. The surface of claim 36, wherein the molecular assemblies comprise a hinged amphiphile, wherein, in the first conformation, the amphiphile is folded closed to define an interior and an exterior, and, in the second, the amphiphile is at least partially open.
- 43. The surface of claim 42, wherein the molecular assemblies comprise paired hinged amphiphiles each having first and second arms, wherein, in the first conformation, the amphiphiles are folded closed, and, in the second conformation, the second arms of the paired amphiphiles unfold from the first arms, wherein the first arms of the paired amphiphiles are bonded to each other through non-convalent interactions in both the first and second conformations.
- 44. The surface of claim 42, wherein the nanolayer retains a member of a small molecule, a bioactive agent, and a biomolecule within the amphiphile in the first conformation.
- 45. The surface of claim 36, wherein the active group comprises a member of a charged molecular group, a polar molecular group, a dipolar molecular group, an aromatic group, a non-polar molecular group, a magnetic particle, a magnetic atom, a magnetic ion, and any combination of the above.
- 46. The surface of claim 45, wherein the magnetic particle is coated with a surfactant comprising one of the information carriers.
- 47. The surface of claim 27, wherein, when the nanolayer is in the first conformation, a member of a small molecule, a bioactive agent, and a biomolecule is adsorbed onto the nanolayer, and when the nanolayer is in the second conformation, the member is released by the nanolayer.
- 48. The surface of claim 27, wherein the external stimulus may be applied to a portion of the nanolayer.
- 49. The surface of claim 27, further comprising a liquid crystal disposed over the nanolayer, wherein a change in the conformation state of the nanolayer causes a change in orientation of the liquid crystal.
- 50. A plate for offset printing comprising the surface of claim 27.
- 51. A data storage medium comprising the surface of claim 27.
- 52. A polymer electrolyte membrane fuel cell, comprising
a polymer electrolyte membrane; a cathode; an anode; a humidity control system; and at least one surface according to claim 27 disposed proximal to the cathode, the anode, or both, wherein the surface is hydrophilic when the nanolayer is in the first conformation state and hydrophobic when the nanolayer is in the second conformation state, and wherein the humidity control system adjusts the conformation of at least a portion of the surface in response to a measured humidity within the fuel cell.
- 53. A polymer electrolyte membrane fuel cell, comprising
a polymer electrolyte membrane; a cathode; an anode; and at least one surface according to claim 27 disposed between a fuel source and the cathode, the anode, or both, wherein the surface retains sulfur, SOx, or both when the nanolayer is in the first conformation state and has a low affinity for sulfur and SOx when the nanolayer is in the second conformation state.
- 54. The polymer electrolyte membrane of claim 53, further comprising a material having a high affinity for sulfur, SOx, or both, wherein the material is retained by the surface when the nanolayer is in the first conformation state and released by the surface when the nanolayer is in the second conformation state.
- 55. A method of operating a microfluidic system, comprising:
providing a surface according to claim 27;adjusting the conformation state of portions of the surface to create a predetermined pattern of channels defined by hydrophilic and hydrophobic regions of the surface.
- 56. The method of claim 55, further comprising changing the conformation of a portion of a nanolayer to control the flow of fluid along one of the channels.
- 57. A method of operating a microfluidic system, comprising:
providing a surface according to claim 27;adjusting the conformation state of portions of the surface to transport a drop of a fluid across the surface.
- 58. A switch for a waveguide disposed at a junction between an incoming waveguide and first and second outgoing waveguides, the switch comprising:
a chamber having a surface and containing a liquid and a gas and an interface between them, wherein:
the surface comprises a nanolayer of a material characterized in that, when an external stimulus is applied, the nanolayer shifts from a first conformation state to a second conformation state, when the nanolayer has one of the first or second conformation state, light can pass through the liquid from the incoming waveguide to the first outgoing waveguide, and when the material has the other of the first or second conformation state, light from the incoming waveguide is reflected off the liquid-gas interface and directed into the second outgoing waveguide.
- 59. A substrate having a surface having at least first and second properties, wherein:
the first property is defined by a surface property of the substrate, the second property is defined by a surface property of a nanolayer deposited on the substrate, and the surface density of the nanolayer is adapted and constructed such that the interaction with the surface of a chemical entity having a size less than a predetermined size is defined by the first property and the interaction with the surface of a chemical entity having a size greater than the predetermined size is defined by the second property.
- 60. A method of reversibly modifying a property of a surface, comprising:
depositing a nanolayer of a material on at least a first portion of a substrate; and applying an external stimulus to the nanolayer, wherein:
when the stimulus is applied, the nanolayer shifts from a first adsorption affinity to a second adsorption affinity, wherein the affinity is for an entity that adsorbs onto the surface.
- 61. The method of claim 60, further comprising causing the nanolayer to shift from the second adsorption affinity to the first adsorption affinity.
- 62. The method of claim 60, wherein the affinity is for adsorption of a member of a surfactant, water, a predetermined analyte, a biomolecule, a small molecule, and a bioactive agent.
- 63. The method of claim 60, further comprising depositing a second nanolayer on a second portion of the substrate.
- 64. A substrate having a surface with reversibly switchable properties, the surface comprising:
a nanolayer of a material characterized in that, when an external stimulus is applied, the nanolayer switches from a first adsorption affinity to a second adsorption affinity, wherein the affinity is for an entity that adsorbs onto the surface.
- 65. The substrate of claim 64, wherein the affinity is for adsorption of a member of a surfactant, water, a predetermined analyte, a biomolecule, a small molecule, and a bioactive agent.
- 66. The substrate of claim 64, wherein the external stimulus causes a redistribution of the electron density within the nanolayer.
- 67. A biosensor comprising the substrate of claim 64.
- 68. A medium for chromatographic separation comprising the substrate of claim 64.
- 69. A self assembled monolayer comprising an area-per-molecule of 6.756 nm2.
- 70. The self assembled monolayer of claim 69, wherein the monolayer comprises 16-mercaptohexadecanoic acid.
Parent Case Info
[0001] This application claims priority from U.S. Provisional Application No. 60/350,090, filed Nov. 2, 2001, the entire contents of which are incorporated herein by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60350090 |
Nov 2001 |
US |