Claims
- 1. A method of forming an optical tool, comprising:
forming a tool from a material of a size and shape adapted for manipulation by at least one optical trap.
- 2. The method according to claim 1, wherein said forming step is accomplished by removing material from a tool blank.
- 3. The method according to claim 2, wherein said tool blank is a microsphere.
- 4. The method according to claim 2, wherein said material is removed by one of drilling and etching.
- 5. The method according to claim 1, wherein said forming step is accomplished by stereolithography using a polymer.
- 6. The method according to claim 4, wherein said etching step is one of chemical, optical and ion beam.
- 7. An optical tool comprising:
a main body formed of a material of a size and shape adapted for manipulation by at least one optical trap.
- 8. The optical tool according to claim 7, wherein said main body comprises a protrusion at one end.
- 9. The optical tool according to claim 7, wherein said main body is a substantially rectangular crystal adapted to form a pick which can form a groove or slot in a material.
- 10. The optical tool according to claim 8, wherein said protrusion is conical and adapted to punch a material.
- 11. The optical tool according to claim 8, wherein said protrusion is adapted for use as a screwdriver and said protrusion has a flat head.
- 12. The optical tool according to claim 10, further comprising another protrusion at another end of said main body.
- 13. The optical tool according to claim 12, wherein said another protrusion is conical and adapted to punch a material.
- 14. The optical tool according to claim 8, wherein said protrusion is a drill bit.
- 15. The optical tool according to claim 8, wherein said protrusion is a pointed blade adapted to cut a material.
- 16. The optical tool according to claim 7, wherein said main body is substantially cylindrical in shape.
- 17. The optical tool according to claim 16, wherein said main body is adapted for use as an optical hammer, and one end of said main body has a region of surface irregularity formed to yield a relatively increased friction zone.
- 18. The optical tool according to claim 17, wherein another end of said main body is formed in a shape of a wedge.
- 19. The optical tool according to claim 16, wherein said main body is adapted for use as an optical hammer and includes an anisotropic function.
- 20. The optical tool according to claim 19, wherein said anisotropic function includes one end of said main body having a region of positive charge, and another end of said main body having a region of negative charge.
- 21. The optical tool according to claim 16, wherein said main body is one of a microcapillary and a carbon nanotube.
- 22. The optical tool according to claim 21, wherein said one of microcapillary and said carbon nanotube includes an anisotropic function.
- 23. The optical tool according to claim 22, wherein said anisotropic function includes one end of said main body having a coating of a chemical causing acidity, and another end of said main body having a coating of a chemical causing basicity.
- 24. The optical tool according to claim 7, wherein said main body is adapted for use as an optical capillary.
- 25. The optical tool according to claim 24, wherein said optical capillary includes a region of surface irregularity, said region having a relatively increased lubricity.
- 26. The optical tool according to claim 24, wherein said optical capillary is one of a tubule and a slotted nib.
- 27. The optical tool according to claim 26, wherein said one of tubule and said slotted nib include one end in a shape of an angle.
- 28. The optical tool according to claim 24, wherein said optical capillary includes means for obtaining samples disposed at one end of said main body.
- 29. The optical tool according to claim 24, wherein said optical capillary includes means for increasing lubricity disposed at one end of said main body.
- 30. The optical tool according to claim 16, wherein said main body is adapted for use as an optical hammer, and one end of said main body includes means for yielding an increased friction zone.
- 31. The optical tool according to claim 7, wherein said main body includes means for sampling.
- 32. The optical tool according to claim 31, wherein said sampling means comprises one of hemispheres, hollow cylinders, and hollow devices which form optical cups.
- 33. The optical tool according to claim 32, further comprising a closeable lid for each of said optical cups.
- 34. The optical tool according to claim 24, wherein said optical capillary is a carbon nanotube with a latex bead covalently bonded at one end of said carbon nanotube.
- 35. The optical tool according to claim 7, wherein said main body further comprises means for applying torque.
- 36. The optical tool according to claim 35, wherein said torque applying means comprises an optical wrench.
- 37. The optical tool according to claim 36, wherein said optical wrench includes an inset cavity.
- 38. The optical tool according to claim 36, wherein said optical wrench includes a protruding head.
- 39. The optical tool according to claim 36, wherein said optical wrench is an open optical wrench including a square template.
- 40. The optical tool according to claim 36, wherein said optical wrench is an optical socket including a polygonal inset cavity.
- 41. The optical tool according to claim 36, wherein said optical wrench includes a polygonal head.
- 42. The optical tool according to claim 36, wherein said optical wrench includes a polygonal template.
- 43. The optical tool according to claim 35, wherein said torque applying means is an optical screwdriver including an inset cross head.
- 44. The optical tool according to claim 35, wherein said torque applying means is an optical screwdriver including a protruding cross head.
- 45. The optical tool according to claim 7, wherein said optical trap is used to apply a rotational force to said main body, and causes said main body to move about a predetermined axis of rotation.
- 46. The optical tool according to claim 7, wherein said main body is adapted for use as an optical imprinter which prints active materials on a substrate for one of creating arrays for assays and for anchoring a growth of more extensive structures.
- 47. The optical tool according to claim 7, wherein said optical imprinter is in a shape used to impart one of a pattern, brand, and logo on one of a material and substrate.
- 48. The optical tool according to claim 47, wherein said optical imprinter includes an inset character.
- 49. The optical tool according to claim 47, wherein said optical imprinter includes an extrusion.
- 50. The optical tool according to claim 7, wherein said main body is adapted for use as a retractor.
- 51. The optical tool according to claim 7, wherein said main body is adapted for use as a hoe.
- 52. The optical tool according to claim 7, wherein said main body is adapted for use as one of an optical forceps and an optical speculum.
- 53. The optical tool according to claim 52, further comprising a bead structure disposed on each end of said optical forceps, each said bead structure which is movable by said optical trap.
- 54. The optical tool according to claim 7, wherein said main body includes radioactive material.
- 55. The optical tool according to claim 7, wherein said main body includes a magnetic end.
- 56. The optical tool according to claim 7, wherein said main body includes oppositely charged sides.
- 57. The optical tool according to claim 55, wherein said magnetic end attracts one of ferromagnetic and paramagnetic elements of opposite polarity in a workpiece and repels diamagnetic elements in said workpiece.
- 58. The optical tool according to claim 7, further comprising a cavity disposed in said main body.
- 59. The optical tool according to claim 58, wherein a microtransponder is disposed in said cavity.
- 60. The optical tool according to claim 59, wherein said microtransponder includes an extended antenna.
- 61. The optical tool according to claim 60, wherein said microtransponder is a radio transmitter-receiver activated for transmission by reception of a predetermined signal.
- 62. The optical tool according to claim 61, wherein a surface characteristic of the optical tool includes one of a charge and an oligonucleotide sequence which is selectively reactive to one of chemical and biologic material.
- 63. The optical tool according to claim 7, wherein said main body is adapted for use as an optical lever.
- 64. The optical tool according to claim 63, wherein said optical lever comprises one of a single-walled and a multi-walled carbon nanotube.
- 65. The optical tool according to claim 64, wherein said optical lever further comprises at least one handle affixed to said optical lever.
- 66. The optical tool according to claim 65, wherein said handle is a latex bead chemically attached to said optical lever.
- 67. The optical tool according to claim 65, wherein said optical lever and said at least one handle are constructed as a single piece using stereo-lithographic techniques.
- 68. The optical tool according to claim 21, wherein a latex bead is bonded to said carbon nanotube.
- 69. The optical tool according to claim 68, wherein said latex bead is used as a fulcrum.
- 70. A biological probe, comprising:
a radio-tagged optical tool which is manipulated by at least one optical trap, said radio tag having a surface on which is disposed a predetermined oligonucleotide.
- 71. The biological probe according to claim 70, wherein said optical tool comprises a transponder.
- 72. A method of identifying a biological probe, comprising:
manipulating a radio-tagged optical tool using at least one optical trap; activating a signal in a transponder in the probe using said optical trap; hybridizing the probe with a corresponding target material; monitoring a change in signal from said transponder which reflects a change in mass of the probe; and identifying the probe by said change in mass.
- 73. The optical tool according to claim 8, wherein said protrusion is a saw blade.
- 74. The optical tool according to claim 7, wherein said main body is adapted for use as an optical grinder.
- 75. The optical tool according to claim 8, wherein said protrusion is adapted for use as a scribe.
- 76. A method of manipulating an object with a workpiece, comprising:
holding the workpiece with at least one optical trap; grasping the object in an illumination of at least one optical trap; and manipulating the workpiece with the object.
- 77. The method according to claim 76, wherein said object is an optical tool.
- 78. The method according to claim 77, wherein said optical tool is selected from a group consisting essentially of hammers, blades, picks, wrenches, saws, drills, punches, files, and screwdrivers.
- 79. The optical tool according to claim 61, wherein said microtransponder is adapted for use as one of a micrometer optical electrical tool (MOET) and a nanometer optical electrical tool NOET.
- 80. The optical tool according to claim 7, wherein said main body comprises a portion functionalized by a member of a group consisting essentially of charge, magnetic, radioactive, hydrogen bonding, hydrophobic, hydrophilic, acidic, and basic functional groups.
- 81. The optical tool according to claim 7, wherein said main body comprises a portion labeled with a member of a group consisting essentially of transponder, dye, metalic, quantum dot, fluorescent, chemiluminescent, phosphor, radioactive, catalytic, and enzyme labels.
- 82. A method of imprinting at least a submicron size identifier on a substrate comprising:
coating an imprinting material on an optical tool; pressing said optical tool on the substrate to impart said imprinting material in a form of the submicron size identifier.
- 83. The method according to claim 82, wherein the submicron size identifier is one of a tag, brand, logo, serial number, bar code, and data matrix.
- 84. The method according to claim 82, wherein the submicron size identifier is a dot used to imprint said imprinting material which is an active material on the substrate for one of creating an array for an assay and anchoring growth of a more extensive structure.
- 85. The method according to claim 84, wherein said active material includes one of oligonucleotides, antigens, antibodies, polysaccharides, and catalysts.
- 86. The method according to claim 82, further comprising:
activating said imprinting material.
- 87. The method according to claim 86, wherein said activating step comprises exposing the substrate imprinted with said imprinting material to one of light, a chemical, and heat.
Parent Case Info
[0001] The present invention claims priority from U.S. provisional application No. 60/316,917, dated Aug. 31, 2001, which is herein incorporated by reference.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60316917 |
Aug 2001 |
US |