Claims
- 1. A method of making a nanoparticle comprising:
(a) providing a non-conducting core; (b) binding a plurality of linker molecules to the non-conducting core; (c) binding precursors to the linker molecules, the precursors comprising a conducting material; and (d) forming a shell layer around said core by depositing onto the precursors additional conductive material; wherein the thickness of the shell layer is less than that for which the nanoparticle has a plasmon resonance peak width described by a bulk dielectric function of the conductive material; and wherein each of said steps (a)-(d) is carried out in solution.
- 2. The method according to claim 1 wherein the conducting material comprises a metal.
- 3. The method according to claim 2 wherein the metal is selected from the group consisting of gold, silver, palladium, platinum, lead, iron, copper, and combinations thereof.
- 4. The method according to claim 2 wherein the linker molecules comprise a material to which atoms of said metal can covalently bond.
- 5. The method according to claim 2 wherein the linker molecules comprise a material to which atoms of said metal can ionically bond.
- 6. The method according to claim 1 wherein the conducting material comprises a conducting organic material.
- 7. The method according to claim 6 wherein the conducting organic material is selected from the group consisting of polyacetylene and doped polyaniline.
- 8. The method according to claim 1 wherein the linker molecule comprises a molecule that is attachable to the core and that has an active atomic site that has an affinity for the precursor.
- 9. The method according to claim 8 wherein the active atomic site comprises an element selected from the group consisting of sulfur, nitrogen, and phosphorous.
- 10. The method according to claim 9 wherein the linker molecule comprises an amino acid comprising a terminal group comprising the active atomic site.
- 11. The method according to claim 1 wherein the core comprises active hydroxyl groups and the linker molecule is a silane that hydrolyzes in water to form hydroxyl groups that are bondable to the active hydroxyl groups on the core.
- 12. The method according to claim 11 wherein the silane is selected from the group consisting of aminopropyltriethoxy silane, aminopropyltrimethoxy silane, diaminopropyl-diethoxy silane, 4-aminobutyldimethylmethoxy silane, mercaptopropyltrimethoxy silane, diphenyltriethoxy silane reacted with tetrahydrothiophene, and combinations thereof.
- 13. The method according to claim 1 wherein said linker molecule comprises a non-metallic material.
- 14. The method according to claim 13 wherein said non-metallic material is selected from the group consisting of CdS and CdSe.
- 15. The method according to claim 1 wherein the linker molecule is crosslinked to another linker molecule.
- 16. The method according to claim 15 wherein the crosslinked linker molecules are crosslinked by a thermal or a photo-induced chemical crosslinking process.
- 17. The method according to claim 1 wherein the core comprises a material selected from the group consisting of dielectric materials and semiconductors.
- 18. The method according to claim 1 wherein the core comprises a dielectric material selected from the group consisting of silicon dioxide, titanium dioxide, polymethyl methacrylate, polystyrene, gold sulfide and dendrimers.
- 19. The method according to claim 1 wherein the core comprises a semiconductor selected from the group consisting of cadmium selenium, cadmium sulfide, gallium arsenide.
- 20. The method according to claim 1 wherein the core comprises a polymer matrix that can yield a particle with a diameter of from about 2 nm to about 100 μm.
- 21. The method according to claim 20 wherein the polymer comprises polymethylmethacrylate.
- 23. The method according to claim 1 wherein the nanoparticle has a wavelength absorbance maximum in the range of approximately 300 nm to 20 μm.
- 24. The method according to claim 23 wherein the wavelength absorbance maximum is between 500 nm and 10 um.
- 25. The method according to claim 24 wherein the wavelength absorbance maximum is between 900 nm and 5 um.
- 26. The method according to claim 1 wherein the each precursor comprises a cluster of atoms, ions, or molecules.
- 27. The method according to claim 26 wherein step (d) comprises reducing conducting atoms, ions or molecules onto said clusters.
- 28. A method of metallizing a surface comprising layering onto said surface a plurality of nanoparticles constructed in accordance with claim 1, wherein the conducting material comprises a metal.
- 29. A method of optically tuning a mixture of nanoparticles comprising:
determining the wavelengths of light to be absorbed or to be scattered by said mixture; making at least two of said nanoparticles made as in claim 1 differing in their ability to absorb or to scatter light; and mixing said nanoparticles to achieve the desired degree of absorption or scattering.
- 30. A method of metallizing a surface comprising:
layering onto said surface a nanoparticle comprising:
at least one non-conducting core layer; and at least one conducting shell layer, said shell layer independently layered upon said core layer; wherein the thickness of the shell is less than that for which the nanoparticle has a plasmon resonance peak width described by a bulk dielectric function of a material comprising said conducting shell layer.
- 31. A method of producing particles comprising the steps of
forming a nonconducting core layer and binding conducting molecules, ions, or atoms to the core layer in solution; wherein the particles have a wavelength absorbance maximum in the range of approximately 300 nm to 20 μm.
- 32. The method according to claim 31 wherein the step for binding conducting molecules to the core layer further includes the steps of
binding linker molecules to the core layer and binding clusters of conducting atoms, ions, or molecules to said linker molecules wherein each of said steps is carried out in solution.
- 33. The method according to claim 32 further including the step of depositing conducting atoms, ions or molecules onto said clusters.
- 34. A method of making at least one composite particle having a plasmon resonance, said method comprising:
(a) providing at least one substrate particle; (b) attaching a plurality of precursors to each substrate particle; (c) utilizing the precursors as nucleation sites for the formation of a shell around each substrate particle.
- 35. The method according to claim 34 wherein the shell has a controllable thickness.
- 36. The method according to claim 34 wherein each said substrate particle is a nanoparticle having a diameter between about 1 nm and about 10 μm.
- 37. The method according to claim 34 wherein step (a) comprises providing a mixture of substrate particles and wherein said mixture has a distribution of substrate particle diameters with a standard deviation of up to about 20%.
- 38. The method according to claim 34 wherein each of the precursors is selected from the group consisting of atoms, ions, molecules, clusters, and colloidal particles.
- 39. The method according to claim 34 wherein the precursors are nanoparticles.
- 40. The method according to claim 39 wherein the average diameter of the nanoparticles is between about 1 nm and about 10 nm.
- 41. The method according to claim 34 wherein the precursors have a second plasmon resonance.
- 42. The method according to claim 34 wherein the wavelength of the plasmon resonance of the composite particle is between about 300 nm and 20 μm.
- 43. The method according to claim 34 further comprising:
(d) tuning the plasmon resonance of the composite particle by controlling any of steps (a), (b) or (c).
- 44. The method according to claim 34 wherein step (b) comprises:
(b1) attaching a plurality of linker molecules to the substrate particle; and (b2) attaching each of the precursors to at least one linker molecule;
- 45. The method according to claim 44 wherein step (b1) comprises adsorbing the linker molecules onto the substrate particle.
- 46. The method according to claim 44 wherein step (b1) comprises covalently binding, each linker molecule to the substrate particle.
- 47. The method according to claim 44 wherein step (b1) comprises ionically binding each linker molecule to the substrate particle.
- 48. The method according to claim 44 wherein each of said linker molecules comprises an atomic site having an affinity for the precursors.
- 49. The method according to claim 44 wherein step (b2) comprises covalently binding each of the precursors to at least one of the linker molecules.
- 50. The method according to claim 34 wherein the substrate particle comprises a core, wherein said core comprises a material selected from the group consisting of dielectric materials and semiconductors.
- 51. The method according to claim 34 wherein said substrate particle comprises:
a core; and a second shell around the core; wherein at least one of the core and the second shell comprises a material selected from the group consisting of metals and conducting polymers and the other of the core and the second shell comprises a material selected from the group consisting of dielectric materials and semiconductors.
- 52. The method according to claim 34 wherein each of the precursors comprises a conducting material.
- 53. The method according to claim 52 wherein the conducting material is selected from the group consisting of metals and conducting polymers.
- 54. The method according to claim 52 wherein step (c) comprises growing the precursors into a shell comprising the conducting material.
- 55. The method according to claim 54 wherein step (c) comprises rducing additional conducting material onto the conducting material.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application relies for priority on the following two provisional applications: the first application is entitled Metal Nanoshells and is to Oldenburg et al., and was filed Mar. 12, 1997 and has Ser. No. 60/040,971; the second application is entitled Metal Nanoshells is to Oldenburg et al., and was filed on Mar. 14, 1997 and the serial number of that application is Ser. No. 60/040,570. These applications are specifically included herein by reference.
STATEMENT REGARDING FEDERALLY SPONSORED RESEARCH OR DEVELOPMENT
[0002] The research that resulted in this invention was funded by the Office of Naval Research, N00014-97-1-0217, and the National Science Foundation, ECS-9258118.
Provisional Applications (2)
|
Number |
Date |
Country |
|
60040971 |
Mar 1997 |
US |
|
60040570 |
Mar 1997 |
US |
Divisions (1)
|
Number |
Date |
Country |
Parent |
09038377 |
Mar 1998 |
US |
Child |
09755229 |
Jan 2001 |
US |