Claims
- 1. A magnetic nanoprobe for use in magnetic micromanipulation comprising:
a micron-sized soft-ferromagnetic wire serving as a magnetic core; a micron-sized coil wound around the magnetic core; and a sharp tip defined on a distal end of the magnetic core.
- 2. The magnetic nanoprobe of claim 1 where the micron-sized coil is comprised of at least two layers of wire coils.
- 3. The magnetic nanoprobe of claim 1 where the micron-sized magnetic core has a diameter of 100 μm or less, wherein the micron-sized coil is comprised of magnet wire having a diameter of 50 μm or less, and wherein the sharp tip defined on a distal end of the magnetic core is formed by electrochemical etching.
- 4. A method comprising:
providing a biofunctionalized magnetically interactive nanoparticle; disposing the biofunctionalized magnetically interactive nanoparticle into a cell; and manipulating the magnetically interactive nanoparticle in the cell by means of a magnetic nanoprobe to interact with intracellular processes.
- 5. A nanoelectromagnetic mechanical apparatus comprising:
a plurality of nanoprobes combined to form a nanoelectromagnet assembly; and at least one magnetic nanowire disposed proximate to the nanoelectromagnet assembly and electromagnetically coupled thereto.
- 6. The nanoelectromagnetic mechanical apparatus of claim 5 where the nanoelectromagnet assembly is arranged and configured to serve as a stator, and where the nanowire serves as a rotor.
- 7. The nanoelectromagnetic mechanical apparatus of claim 5 where the nanoelectromagnet assembly is arranged and configured to serve as a solenoid coil, and where the nanowire serves as an actuator.
- 8. The nanoelectromagnetic mechanical apparatus of claim 5 where the nanoelectromagnet assembly is arranged and configured to serve as a relay coil, and where the nanowire serves as a relay contact.
- 9. An apparatus for providing a nanogap point contact comprising:
a first magnetic nanowire having at least one associated electrical contact; and a second magnetic nanowire disposed askew to the first magnetic nanowire to form a crossing therebetween and having at least one associated electrical contact, the first and second nanowires touching or nearly touching each other at the crossing, so that magnetoresistance between the first and second nanowires can be measured.
- 10. The apparatus of claim 9 where at least one of the first and second nanowires is covered with a molecular substance, whose spin transport properties is to be measured.
- 11. The apparatus of claim 10 where at least one of the first and second nanowires is covered by a thin film of the molecular substance.
- 12. The apparatus of claim 9 where the crossing of the first and second magnetic nanowires is approximately at right angles and their touching or near touching comprises a point contact.
- 13. The apparatus of claim 12 where the point contact is capable of single molecule interrogation.
- 14. The apparatus of claim 9 where the first and second magnetic nanowires are each single domain magnets.
- 15. The apparatus of claim 14 where the first and second magnetic nanowires each have a longitudinal axis and the single domain magnets are oriented along the longitudinal axis at zero applied magnetic field.
- 16. The apparatus of claim 15 further comprising a source of an external applied magnetic field and wherein one of the first and second magnetic nanowires has its longitudinal axis substantially perpendicular the external applied magnetic field.
- 17. An apparatus for providing a nanogap comprising:
a first magnetic nanowire having at least one associated longitudinal length; and a second magnetic nanowire having at least one associated longitudinal length, the second magnetic nanowire disposed substantially parallel to the first magnetic nanowire by at least in part magnetic self-assembly to form the nanogap between at least a portion of their longitudinal lengths, the first and second nanowires touching or nearly touching each other.
- 18. The apparatus of claim 17 further comprising an electrical contact coupled to each of the first and second nanowires, such that the nanogap between them forms an electron tunneling junction.
- 19. The apparatus of claim 18 where the nanogap is approximately 10 nm across or less.
- 20. The apparatus of claim 18 further comprising a coating of a molecular substance of interest on at least one of the first and second magnetic nanowires so that the electron tunneling junction is formed through the molecular substance of interest.
- 21. The apparatus of claim 17 further comprising longitudinally sequential plating of the first and second nanowires with magnetic and nonmagnetic material to assist in control of the magnetic self-assembly of the first and second nanowires.
- 22. The apparatus of claim 17 where the first and second nanowires are comprised at least in part of gold or silver for enhanced molecular Raman signals when aligned.
- 23. The apparatus of claim 22 where the first and second nanowire is comprised of a sequential electrodeposition of nickel, silver or gold and nickel portion.
- 24. The apparatus of claim 23 further comprising a coating of a molecular substance of interest on at least one of the first and second nanowires, including at least part of the silver or gold portion.
- 25. An improvement in an apparatus for performing magnetic resonance force microscopy comprising:
a nanowire cantilever resonator; and a metal colloidal nanoparticle coupled to the nanowire cantilever resonator as an optical nano-reflector to assist in vibration detection by the apparatus.
- 26. The improvement of claim 25 wherein the apparatus includes a light source, and a source of an external magnetic field, where the nanowire cantilever resonator comprises a cantilevered magnetic nanowire and where the metal colloidal nanoparticle comprises a silver nanosphere attached to the nanowire so that an increased scattering cross section of the metal colloidal nanoparticle due to its plasmon resonance when illuminated by light renders vibration of the cantilevered magnetic nanowire visible when driven by the external magnetic field.
- 27. The improvement of claim 26 where the cantilevered magnetic nanowire is 50 nm in diameter or less.
- 28. The improvement of 26 where the nanowire cantilever resonator comprises a nonmagnetic nanowire as its proximal portion fabricated with a single domain magnetic nanowire as its distal portion for generation of an ultra-high gradient magnetic field for single spin selection or force detection.
- 29. An improvement in an apparatus for performing magnetic resonance imaging (MRI) wherein an MRI imaging coil assembly comprises:
a first fiber; a second fiber disposed parallel to and proximately adjacent to the first fiber; and at least one coil magnet wrapped on each of the first and second fibers so that at least two coils are approximately parallel and adjacent to each other to provide a high gradient magnetic field.
- 30. The improvement of claim 29 wherein at least two coil magnets are wound on each fiber and serial coupled together as a pair of coil magnets, and wherein each pair is wound and oriented on its corresponding fiber to provide opposing fields to the adjacent pair of magnet coils.
- 31. The improvement of claim 29 where at least two imagining directions are provided with the MRI imaging coil assembly.
- 32. The improvement of claim 29 the MRI imaging coil assembly generates a magnetic gradient of the order of 100,000 Gauss/cm.
- 33. An improvement in an apparatus for performing magnetic resonance imaging (MRI) using scanning probe microscopy comprising:
a cantilevered fiber; a microcoil wound on an end of the fiber; and a magnetic nanoparticle coupled on the fiber and magnetically coupled to the microcoil for generating high gradient imaging magnetic fields.
- 34. The improvement of claim 33 where the magnetic nanoparticle is ferromagnetic.
- 35. The improvement of claim 33 where the fiber is a capillary tube filled with ferromagnetic material.
- 36. The improvement of claim 35 wherein the capillary tube is 25 microns in diameter or less and the microcoil is 50 microns in diameter or less.
- 37. A nanoscale magnetic probe for spin transport measurements of a molecular sample comprising:
a first magnetic nanowire; a second magnetic nanowire, the first and second magnetic nanowires arranged to form a point contact between them, measurement means for sensing magnetic signals between the first and second magnetic nanowires as a function of the molecular sample disposed between the first and second magnetic nanowires.
- 38. The nanoscale magnetic probe of claim 37 wherein the measurement means for sensing magnetic signals measures magnetoresistance between the first and second magnetic nanowires.
- 39. The nanoscale magnetic probe of claim 37 wherein the molecular sample is bound to at least one of the first and second nanowires.
- 40. The nanoscale magnetic probe of claim 39 wherein the molecular sample is coated onto at least one of the first and second nanowires.
- 41. The nanoscale magnetic probe of claim 37 wherein the relative magnetic field of the first and second nanowires are tuned relative to each other using external magnetic fields a the hysteresis characteristic of the first and second nanowires.
- 42. The nanoscale magnetic probe of claim 37 wherein the first and second nanowires are manipulated to lie in nonparallel directions relative to each other and to cross each other.
- 43. The nanoscale magnetic probe of claim 37 wherein the first and second nanowires are manipulated to lie in parallel directions relative to each other without crossing each other.
- 44. The nanoscale magnetic probe of claim 43 wherein the first and second nanowires are at least in part self-assembled with respect to each using mutual magneto-static interaction.
- 45. The nanoscale magnetic probe of claim 43 where the first and second nanowires are separable by 10 nm or less from each and form an electron tunneling junction between them.
- 46. The nanoscale magnetic probe of claim 43 where the first and second nanowires have opposite magnetizations from each other.
- 47. The nanoscale magnetic probe of claim 43 where at least one of the first and second nanowires is coated with the molecular sample.
- 48. The nanoscale magnetic probe of claim 46 wherein at least one of the first and second nanowires is comprised of a magnetic and nonmagnetic metal.
- 49. The nanoscale magnetic probe of claim 46 wherein at least one of the first and second nanowires includes a magnetic and nonmagnetic metal plating.
- 50. The nanoscale magnetic probe of claim 47 wherein at least one of the first and second nanowires includes a magnetic and nonmagnetic metal plating.
- 52. The nanoscale magnetic probe of claim 37 wherein the molecular sample is a fullerene.
- 53. The nanoscale magnetic probe of claim 37 wherein the molecular sample is a colloid.
- 54. The nanoscale magnetic probe of claim 37 wherein the molecular sample is a quantum dot.
- 55. The nanoscale magnetic probe of claim 46 wherein the first and second nanowires are each comprised of concatenated segments of nickel ends with silver or gold centers so that enhanced optical field detection of Raman spectroscopic signals is realized.
- 56. The nanoscale magnetic probe of claim 46 wherein the first and second nanowires are utilized as quantum gates.
RELATED APPLICATIONS
[0001] The present application is related to U.S. Provisional Patent Application serial No. 60/349,613, filed on Jan. 18, 2002, which is incorporated herein by reference and to which priority is claimed pursuant to 35 USC 119.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60349613 |
Jan 2002 |
US |