Claims
- 1. A method of depositing a population of nanowires on a surface substantially in a desired orientation, comprising:
flowing a first fluid containing nanowires over the surface in a first direction, the first direction being parallel to a desired longitudinal orientation of the nanowires; and permitting a population of nanowires in the first fluid to become immobilized onto the surface, a longitudinal dimension of the nanowires from the first fluid being substantially oriented in the first direction.
- 2. The method of claim 1, wherein the flowing step comprises providing a microscale fluid channel on the surface of the substrate and flowing the first fluid through the fluid conduit in the first direction.
- 3. The method of claim 1, comprising providing a plurality of fluid channels over different regions of the surface of the substrate, and flowing the first fluid through each of the fluid conduits in the first direction.
- 4. The method of claim 2, wherein the microscale fluid channel comprises one or more of a widened region, a shallow region, and a cove, the nanowires preferentially immobilizing in the one or more widened region, shallow region and cove.
- 5. The method of claim 2, wherein the step of providing a microscale fluid channel on the substrate surface comprises providing a manifold having a first groove disposed in its first surface, and mating the first surface of the manifold with the surface of the substrate to define a first enclosed channel on the first surface of the substrate.
- 6. The method of claim 2, wherein the step of providing a microscale fluid channel on the substrate surface comprises providing a layer of polymeric material on the substrate surface and defining the microscale fluid channel in the layer of polymeric material to provide fluidic communication to at least a portion of the substrate surface.
- 7. The method of claim 6, wherein the layer of polymeric material comprises a photoresist, and the step of defining the microscale fluidic channel comprises exposing a portion of the layer of photoresist and developing the layer of photoresist to define the microscale fluidic channel.
- 8. The method of claim 6, further comprising providing a cover layer over the layer of polymeric material to seal and enclose the microscale fluidic channel, the cover layer comprising at least a first port disposed therethrough and positioned to provide fluid access to the microscale fluidic channel.
- 9. The method of claim 8, wherein the photoresist comprises a positive photoresist.
- 10. The method of claim 1, wherein the permitting step comprises providing the first surface of the substrate as a functionalized first surface that is capable of binding the nanowires from the first fluid.
- 11. The method of claim 10, wherein the step of providing the first surface of the substrate as a functionalized first surface comprises providing functional groups on only a portion of the first surface.
- 12. The method of claim 11, wherein the portion of the first surface comprises one or more electrical contacts.
- 13. The method of claim 11, wherein the functional groups comprise protectable or deprotectable functional groups.
- 14. The method of claim 13, wherein the functional groups comprise photodeprotectable functional groups.
- 15. The method of claim 1, further comprising the step of providing at least first and second electrical contacts on the surface of the substrate, the first and second electrical contacts being separated by a first distance in the first direction on the first substrate, the first distance being less than an average length of the nanowires in the first fluid containing nanowires.
- 16. The method of claim 15, wherein the first and second electrical contacts are provided on the surface of the substrate before flowing the fluid containing the nanowires over the first surface.
- 17. The method of claim 15, wherein the first and second electrical contacts are provided on the surface of the substrate after the nanowires have been permitted to be immobilized on the first surface of the substrate.
- 18. The method of claim 1, further comprising flowing a second fluid containing nanowires over the surface in a second direction different from the first direction, and permitting the nanowires in the second fluid to become immobilized onto the surface whereby a longitudinal dimension of the nanowires from the second fluid being substantially oriented in the second direction.
- 19. The method of claim 18, wherein the nanowires from the first fluid oriented substantially longitudinally in the first direction are immobilized to at least a portion of a same region of the surface of the substrate as nanowires from the second fluid oriented substantially longitudinally in the second direction.
- 20. The method of claim 18, wherein the nanowires from the first fluid oriented substantially longitudinally in the first direction are immobilized to a different region of the surface of the substrate as nanowires from the second fluid oriented substantially longitudinally in the second direction.
- 21. The method of claim 1, further comprising:
functionalizing at least a first portion of the surface of the substrate, prior to flowing the first fluid containing the nanowires over the first surface in the first direction, whereby the nanowires immobilize to the first portion of the surface of the substrate that has been functionalized.
- 22. The method of claim 21, wherein the first fluid is flowed over a second portion of the surface of the substrate, the first portion of the surface and the second portion of the surface at least partially overlapping.
- 23. The method of claim 21, wherein the first surface of the substrate comprises at least one other circuit element to which nanowires are to be coupled.
- 24. The method of claim 23, wherein the at least one other circuit element comprises at least a first pair of electrical contacts.
- 25. The method of claim 24, wherein the first pair of electrical contacts comprises first and second metal contact regions on the surface of the substrate.
- 26. The method of claim 23, wherein the at least one other circuit element comprises a nanowire circuit element.
- 27. The method of claim 26, wherein the nanowire circuit element comprises doping different from doping in the nanowires in the first fluid.
- 28. The method of claim 23, wherein the circuit element comprises an integrated circuit element disposed on the substrate.
- 29. The method of claim 18, wherein the integrated circuit element comprises a nanoscale circuit element.
- 30. A method of positioning nanowires in one or more predetermined regions on a substrate, comprising:
providing a substrate having a first surface; overlaying the first surface with a mask, the mask providing fluid access to one or more first predetermined regions on the first surface, but not to one or more second predetermined regions on the surface of the substrate; flowing fluid containing nanowires through the mask and into contact with the first predetermined regions of the substrate surface; and permitting the nanowires contained in the nanowire containing fluid to immobilize in the first predetermined regions of the surface of the substrate.
- 31. The method of claim 30, wherein the step of providing the substrate comprising the first surface comprises providing the first surface as a functionalized surface capable of binding to the nanowires.
- 32. The method of claim 30, wherein the flowing step comprises flowing the fluid containing the nanowires over the first predetermined regions in a first direction to cause the nanowires to immobilize in the first predetermined regions on the surface of the substrate longitudinally oriented substantially in the first direction.
- 33. The method of claim 30, further comprising providing at least first and second electrical contacts in the one or more first predetermined regions, whereby one or more nanowires immobilize in contact with both the first and second electrical contacts in the first predetermined region.
- 34. The method of claim 33, wherein the first and second electrical contacts are provided in the first predetermined regions of the substrate before the nanowires are immobilized in the first predetermined regions.
- 35. The method of claim 33, wherein the first and second electrical contacts are provided in the first predetermined regions of the substrate after the nanowires are immobilized in the first predetermined regions.
- 36. A population of nanowires immobilized on a planar surface of a substrate, the population of nanowires being substantially longitudinally oriented in a first direction parallel to the planar surface.
- 37. The population of nanowires of claim 36, comprising a plurality of discrete sets of nanowires immobilized on separate regions of the surface of the first substrate, the nanowires in each separate region being substantially longitudinally oriented in a selected direction.
- 38. The population of nanowires of claim 36, wherein the first substrate at least first and second electrical contacts disposed thereon, the first and second contacts being positioned sufficiently proximal to each other in the first direction, such that at least one nanowire in the population of nanowires is simultaneously contacting both of the first and second electrical contacts.
- 39. The population of nanowires of claim 38, wherein the first and second electrical contacts are deposited over at least a portion of the at least one nanowire.
- 40. A population of nanowires immobilized on a surface of a substrate, comprising:
a first set of nanowires immobilized in a first selected region of the surface of the substrate; and a second set of nanowires immobilized in a second selected region of the surface of the substrate, the second selected region being separate from the first selected region.
- 41. A nanowire based device, comprising:
at least a first population of nanowires immobilized in at least a first region of a surface of a substrate, the first population of nanowires being substantially longitudinally oriented in a first direction; at least first and second electrical contacts disposed on the first region of the surface of the substrate; and wherein the first and second electrical contacts are separated from each other on the first surface of the substrate in the first direction by a less than an average length of the nanowires in the first population of nanowires.
- 42. The nanowire based device of claim 41, wherein at least one nanowire in the population of nanowires is positioned in contact with both the first and second electrical contacts.
- 43. The nanowire based device of claim 41, wherein the first and second electrical contacts are separated by a distance that is less than 90% of the average length of nanowires in the first population of nanowires.
- 44. The nanowire based device of claim 41, wherein the first and second electrical contacts are separated by a distance that is less than 80% of the average length of nanowires in the first population of nanowires.
- 45. The nanowire based device of claim 41, wherein the first and second electrical contacts are separated by a distance that is less than 50% of the average length of nanowires in the first population of nanowires.
- 46. The nanowire based device of claim 45, wherein the first and second electrical contacts are separated by a distance that is less than 10 μm.
- 47. The nanowire based device of claim 46, wherein the first and second electrical contacts are separated by a distance that is less than 1 μm.
- 48. The nanowire based device of claim 46, further comprising at least third and fourth electrical contacts separate from the first and second electrical contacts, and disposed on the first region of the first surface wherein the third and fourth electrical contacts are separated from each other on the first surface of the substrate in the first direction by less than an average length of the nanowires in the population of nanowires.
- 49. The nanowire based device of claim 46, further comprising:
at least a second population of nanowires immobilized in at least a second region of the surface of the substrate, the second population of nanowires being substantially longitudinally oriented in a second direction; at least third and fourth electrical contacts disposed on the second region of the surface of the substrate; and wherein the third and fourth electrical contacts are separated from each other on the first surface of the substrate in the second direction by a less than (1 μm/distance that is less than an average length of the nanowires in the population of nanowires).
- 50. The nanowire based device of claim 46, further comprising:
at least a second population of nanowires immobilized in at least a second region of the surface of the substrate, the second population of nanowires being substantially longitudinally oriented in a second direction; at least third and fourth electrical contacts separate from the first and second electrical contacts, and disposed on he first region of the first surface wherein the third and fourth electrical contacts are separated from each other on the first surface of the substrate in the first direction by less than (1 μm/a distance that is less than an average length of the nanowires in the first population of nanowires); and at least fifth and sixth electrical contacts disposed on the second region of the surface of the substrate, wherein the fifth and sixth electrical contacts are separated from each other on the first surface of the substrate in the second direction by a less than (1 μm/distance that is less than an average length of the nanowires in the second population of nanowires).
- 51. A substrate comprising
a plurality of populations of nanowires deposited upon a first surface of said substrate; and wherein each of the populations of nanowires is deposited and immobilized in a separate discrete region of the surface of the substrate.
- 52. The substrate of claim 51, further comprising at least a first pair of electrical contacts deposited on the surface of the substrate, the first pair of electrical contacts being positioned to be in electrical contact with wires in at least a first of the plurality of nanowire populations.
- 53. A system for orienting nanowires on a surface of a substrate, comprising:
a substrate having a first surface; a fluid channel disposed on the first surface; and a fluid direction system coupled to the first channel and coupled to a source of fluid containing nanowires, for flowing the fluid containing nanowires in a first direction through the first fluid channel.
- 54. The system of claim 53, wherein the fluid channel is defined in a first surface of a manifold, the first surface of the manifold being mated to the first surface of the substrate to dispose the fluid channel on the first surface of the substrate.
- 55. The system of claim 54, further comprising at least a second fluid channel disposed on the first surface of the substrate.
- 56. The system of claim 55, wherein the first and second fluid channels are fluidly coupled to a first fluid inlet port, the first fluid inlet port being fluidly coupled to the source of fluid containing nanowires.
- 57. A system for positioning nanowires on a substrate, comprising:
a substrate having a first surface; a masking element disposed over the first surface and providing one or more fluid passages to one or more discrete regions of the first surface; a source of fluid containing nanowires fluidly coupled to the one or more fluid passages on the masking element; and a fluid direction system for delivering fluid from the fluid source to the one or more fluid passages.
- 58. The system of claim 57, wherein the masking element comprises a manifold having a plurality of fluid channels disposed therein, the plurality of fluid channels having as at least one wall of the one or more fluid channels the one or more regions of the surface of the substrate, the fluid channels providing the one or more fluid passages to the first surface of the substrate.
- 59. The system of claim 58, wherein one or more of the fluid channels comprises a widened region corresponding to a position on the surface of the substrate where it is desired to position nanowires, the widened region providing longer residence time within the wider region for a fluid flowing through the one or more fluid channels.
- 60. The system of claim 58, wherein the one or more fluid channels comprises a thinned region that provides a shorter average diffusion distance between a fluid flowing through the thinned region of the one or more channels and the surface of the substrate at the thinned region of the one or more fluid channels.
- 61. The system of claim 58, wherein the manifold comprises a flexible material.
- 62. The system of claim 61, wherein the flexible material comprises a polymeric material.
- 63. The system of claim 61, wherein the flexible material comprises PDMS.
- 64. A method of positioning nanostructures on a surface of a substrate, comprising:
contacting the surface of the substrate with a fluid containing the nanostructures; establishing a standing wave through the fluid, the standing wave localizing nanostructures preferentially in first selected regions of the surface of the substrate and not in second selected regions of the substrate.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application is related to and claims priority from Provisional U.S. Patent application Serial No. 60/370,113, filed Apr. 2, 2002, which is hereby incorporated herein in its entirety for all purposes.
Provisional Applications (1)
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Number |
Date |
Country |
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60370113 |
Apr 2002 |
US |