Claims
- 1. A water-dispersible nanoparticle comprising: an inner core comprised of a semiconductive or metallic material; and, surrounding the inner core, an outer layer comprised of a multiply amphipathic dispersant.
- 2. The water-dispersible nanoparticle of claim 1, wherein the inner core is comprised of a semiconductive material.
- 3. The water-dispersible nanoparticle of claim 2, wherein the semiconductive material is inorganic.
- 4. The water-dispersible nanoparticle of claim 3, wherein the semiconductive material is crystalline.
- 5. The water-dispersible nanoparticle of claim 2, wherein the inner core further comprises a water-insoluble organic coating having affinity for the semiconductive material.
- 6. The water-dispersible nanoparticle of claim 5, wherein the organic coating is comprised of trioctylphosphine oxide, trioctylphosphine, tributylphosphine, or a mixture thereof.
- 7. The water-dispersible nanoparticle of claim 5, further including a shell layer between the water-insoluble organic coating and the outer layer.
- 8. The water-dispersible nanoparticle of claim 7, wherein the shell layer is comprised of a semiconductive material having a band gap energy greater than that of the inner core.
- 9. The water-dispersible nanoparticle of claim 1, wherein the inner core is comprised of a metallic material.
- 10. The water-dispersible nanoparticle of claim 9, wherein the inner core further comprises a water-insoluble organic coating having affinity for the metallic material.
- 11. The water-dispersible nanoparticle of claim 10, wherein the water-soluble organic coating is comprised of a hydrophobic surfactant.
- 12. The water-dispersible nanoparticle of claim 11, wherein the hydrophobic surfactant is selected from the group consisting of octanethiol, dodecanethiol, dodecylamine, tetraoctylammonium bromide, and mixtures thereof.
- 13. The water-dispersible nanoparticle of claim 1, wherein the multiply amphipathic dispersant is a polymer having two or more hydrophobic regions and two or more hydrophilic regions.
- 14. The water-dispersible nanoparticle of claim 13, wherein the polymer is linear or branched.
- 15. The water-dispersible nanoparticle of claim 14, wherein the polymer is branched.
- 16. The water-dispersible nanoparticle of claim 15, wherein the polymer is hyperbranched or dendritic.
- 17. The water-dispersible nanoparticle of claim 13, wherein the hydrophobic regions are each comprised of at least one non-ionizable, nonpolar monomer unit.
- 18. The water-dispersible nanoparticle of claim 13, wherein the hydrophobic regions are each comprised of at least one monomer unit selected from the group consisting of ethylene, propylene, alkyl (C4-C12)-substituted ethyleneimine, alkyl acrylates and methacrylates, phenyl acrylate and methacrylate, alkyl acrylamides, styrenes, hydrophobically derivatized styrenes, vinyl ethers, vinyl esters, vinyl halides, and combinations thereof.
- 19. The water-dispersible nanoparticle of claim 18, wherein the hydrophobic regions are each comprised of at least one monomer unit selected from the group consisting of alkyl acrylates, alkyl methacrylates, and alkyl acrylamides.
- 20. The water-dispersible nanoparticle of claim 13, wherein the hydrophilic regions are each comprised of at least one monomer unit containing an ionizable or polar moiety.
- 21. The water-dispersible nanoparticle of claim 20, wherein the hydrophilic regions are each comprised of at least one monomer unit containing an ionizable moiety.
- 22. The water-dispersible nanoparticle of claim 21, wherein the ionizable moiety is selected from the group consisting of carboxylic acid, sulfonic acid, phosphonic acid, and amine substituents.
- 23. The water-dispersible nanoparticle of claim 18, wherein the hydrophilic regions are each comprised of at least one monomer unit containing an ionizable or polar moiety.
- 24. The water-dispersible nanoparticle of claim 23, wherein the hydrophilic regions are each comprised of at least one monomer unit containing an ionizable moiety.
- 25. The water-dispersible nanoparticle of claim 24, wherein the ionizable moiety is selected from the group consisting of carboxylic acid, sulfonic acid, phosphonic acid, and amine substituents.
- 26. The water-dispersible nanoparticle of claim 13, wherein the hydrophilic regions are each comprised of at least one monomer unit selected from the group consisting of water-soluble ethylenically unsaturated C3-C6 carboxylic acids, allylamines, inorganic acid addition salts of allylamines, di-C1-C3-alkylamino-C2-C6-alkyl acrylates and methacrylates, olefinically unsaturated nitrites, diolefinically unsaturated monomers, N-vinyl pyrrolidone, N-vinyl formamide, acrylamide, lower alkyl-substituted acrylamides, lower alkoxy-substituted acrylamides, N-vinylimidazole, N-vinylimidazoline, styrene sulfonic acid and alkylene oxides.
- 27. The water-dispersible nanoparticle of claim 26, wherein the hydrophilic regions are each comprised of at least one monomer unit selected from the group consisting of acrylic acid, methacrylic acid, styrene sulfonic acid, acrylamide and methacrylamide.
- 28. The water-dispersible nanoparticle of claim 13, wherein the hydrophilic regions are each comprised of a vinyl monomer substituted with at least one hydrophilic moiety selected from the group consisting of a carboxylate, a thiocarboxylate, an amide, an imide, a hydrazine, a sulfonate, a sulfoxide, a sulfone, a sulfite, a phosphate, a phosphonate, a phosphonium, an alcohol, a thiol, a nitrate, an amine, an ammonium, and an alkyl ammonium group —[NHR1R2]+, wherein R1 and R2 are alkyl substituents.
- 29. The water-dispersible nanoparticle of claim 28, wherein the hydrophilic moiety is directly bound to a carbon atom in the polymer backbone.
- 30. The water-dispersible nanoparticle of claim 28, wherein the hydrophilic moiety is bound to a carbon atom in the polymer backbone through a linkage selected from the group consisting of alkylene, alkenylene, heteroalkylene, heteroalkenylene, arylene, heteroarylene, alkarylene, aralkylene, and the like.
- 31. The water-dispersible nanoparticle of claim 13, wherein the amphipathic dispersant is a copolymer of a hydrophilic monomer selected from the group consisting of acrylic acid, methacrylic acid and combinations thereof, with a hydrophobic monomer selected from the group consisting of alkyl (C6-C12) acrylamides.
- 32. The water-dispersible nanoparticle of claim 31, wherein the amphipathic dispersant is poly(acrylic acid-co-octylacrylamide).
- 33. The water-dispersible nanoparticle of claim 13, wherein the polymer has a molecular weight in the range of approximately 500 to 50,000.
- 34. The water-dispersible nanoparticle of claim 33, wherein the polymer has a molecular weight in the range of approximately 1000 to 10,000.
- 35. The water-dispersible nanoparticle of claim 34, wherein the polymer has a molecular weight in the range of approximately 1000 to 5000.
- 36. The water-dispersible nanoparticle of claim 32, wherein the poly(acrylic acid-co-octylacrylamide) has a molecular weight in the range of approximately 1000 to 5000.
- 37. The water-dispersible nanoparticle of claim 13, wherein the hydrophobic regions represent in the range of approximately 25 wt. % to 90 wt. % of the polymer.
- 38. The water-dispersible nanoparticle of claim 13, wherein the polymer is a polypeptide, in which the hydrophobic regions are comprised of at least one hydrophobic amino acid and the hydrophilic regions are comprised of at least one hydrophilic amino acid.
- 39. The water-dispersible nanoparticle of claim 13, wherein the polymer is crosslinked.
- 40. The water-dispersible nanoparticle of claim 13, wherein the polymer contains functionalizable groups.
- 41. The water-dispersible nanoparticle of claim 40, wherein the functionalizable groups are bound to the polymer through a linking moiety.
- 42. The water-dispersible nanoparticle of claim 1, wherein the inner core is a member of a monodisperse particle population.
- 43. The water-dispersible nanoparticle of claim 4, wherein the inner core is a member of a monodisperse particle population.
- 44. The water-dispersible nanoparticle of claim 43, wherein the monodisperse particle population is characterized in that when irradiated the population emits light in a bandwidth in the range of approximately 20 nm to 60 nm full width at half maximum (FWHM).
- 45. The water-dispersible nanoparticle of claim 44, wherein the monodisperse particle population is characterized in that when irradiated the population emits light in a bandwidth in the range of approximately 30 nm to 40 nm full width at half maximum (FWHM).
- 46. The water-dispersible nanoparticle of claim 43, wherein the monodisperse particle population is characterized in that it exhibits no more than about a 10% rms deviation in the diameter of the inner core.
- 47. The water-dispersible nanoparticle of claim 43, wherein the monodisperse particle population is characterized in that it exhibits no more than about a 5% rms deviation in the diameter of the inner core.
- 48. A method for preparing a population of water-dispersible nanoparticles, comprising:
(a) admixing (i) an amphipathic dispersant comprised of a polymer having two or more hydrophobic regions and two or more hydrophilic regions, with (ii) a plurality of hydrophobic nanoparticles, in (iii) a nonaqueous solvent, to provide an admixture of dispersant and nanoparticles in solution; (b) subjecting the admixture to conditions effective to cause adsorption of the dispersant by the nanoparticles; and (c) transferring the dispersant-coated nanoparticles prepared in step (b) to an aqueous medium.
- 49. The method of claim 48, wherein the hydrophilic regions contain ionizable groups.
- 50. The method of claim 49, wherein prior to step (b), the admixture is treated with an ionizing agent effective to ionize the ionizable groups.
- 51. The method of claim 50, wherein the ionizable groups are acidic groups and the ionizing agent is a base.
- 52. The method of claim 51, wherein the base is a nitrogenous base or an inorganic hydroxide.
- 53. The method of claim 48, wherein step (b) comprises removal of the solvent from the admixture.
- 54. The method of claim 53, wherein step (c) comprises adding water to the dried admixture.
- 55. The method of claim 48, wherein the number ratio of the amphipathic dispersant to the plurality of nanoparticles in step (a) is in the range of approximately 50:1 to approximately 5000:1.
- 56. The method of claim 48, further including crosslinking the amphipathic dispersant adsorbed to the nanoparticles.
- 57. A composition comprising:
a water-dispersible nanoparticle with an inner core comprised of a semiconductive or metallic material and an outer layer comprised of a multiply amphipathic dispersant conjugated to an affinity molecule that serves as a first member of a binding pair, wherein the affinity molecule is selected from the group consisting of a protein, an oligonucleotide, an enzyme inhibitor, a polysaccharide, and a small molecule having a molecular weight of less than about 1500 grams/Mol.
- 58. The composition of claim 57, wherein the composition further comprises a second member of the binding pair associated with the first member through either covalent or noncovalent interaction.
- 59. The composition of claim 57, wherein the inner core of the nanoparticle is comprised of a semiconductive material.
- 60. The composition of claim 58, wherein the semiconductive material is inorganic.
- 61. The composition of claim 60, wherein the semiconductive material is crystalline.
- 62. The composition of claim 59, wherein the inner core further comprises a water-insoluble organic coating
- 63. The composition of claim 62, wherein the nanoparticle further includes a shell layer between the water-insoluble organic coating and the outer layer.
- 64. The composition of claim 63, wherein the shell layer is comprised of a semiconductive material having a band gap energy greater than that of the inner core.
- 65. The composition of claim 58, wherein the inner core is comprised of a metallic material.
- 66. The composition of claim 65, wherein the inner core further comprises a water-insoluble organic coating having affinity for the metallic material.
- 67. The composition of claim 58, wherein the multiply amphipathic dispersant is a polymer having two or more hydrophobic regions and two or more hydrophilic regions.
- 68. The composition of claim 67, wherein the polymer is linear or branched.
- 69. The composition of claim 68, wherein the polymer is branched.
- 70. The composition of claim 69, wherein the polymer is hyperbranched or dendritic.
- 71. The composition of claim 67, wherein the hydrophobic regions are each comprised of at least one non-ionizable, nonpolar monomer unit.
- 72. The composition of claim 67, wherein the hydrophobic regions are each comprised of at least one monomer unit selected from the group consisting of ethylene, propylene, alkyl (C4-C12)-substituted ethyleneimine, alkyl acrylates and methacrylates, phenyl acrylate and methacrylate, alkyl acrylamides, styrenes, hydrophobically derivatized styrenes, vinyl ethers, vinyl esters, vinyl halides, and combinations thereof.
- 73. The composition of claim 67, wherein the hydrophilic regions are each comprised of at least one monomer unit containing an ionizable or polar moiety.
- 74. The composition of claim 73, wherein the hydrophilic regions are each comprised of at least one monomer unit containing an ionizable moiety.
- 75. The composition of claim 74, wherein the ionizable moiety is selected from the group consisting of carboxylic acid, sulfonic acid, phosphonic acid, and amine substituents.
- 76. The composition of claim 71, wherein the hydrophilic regions are each comprised of at least one monomer unit containing an ionizable or polar moiety.
- 77. The composition of claim 76, wherein the hydrophilic regions are each comprised of at least one monomer unit containing an ionizable moiety.
- 78. The composition of claim 77, wherein the ionizable moiety is selected from the group consisting of carboxylic acid, sulfonic acid, phosphonic acid, and amine substituents.
- 79. The composition of claim 67, wherein the hydrophilic regions are each comprised of at least one monomer unit selected from the group consisting of acrylic acid, alkyl acrylic acids, styrene sulfonic acid, alkylene oxides, and acrylamides.
- 80. The composition of claim 67, wherein the amphipathic dispersant is a copolymer of a hydrophilic monomer selected from the group consisting of acrylic acid, methacrylic acid and combinations thereof, with a hydrophobic monomer selected from the group consisting of alkyl (C6-C12) acrylamides.
- 81. The composition of claim 80, wherein the amphipathic dispersant is poly(acrylic acid-co-octylacrylamide).
- 82. The composition of claim 67, wherein the polymer has a molecular weight in the range of approximately 500 to 50,000.
- 83. The composition of claim 82, wherein the polymer has a molecular weight in the range of approximately 1000 to 10,000.
- 84. The composition of claim 83, wherein the polymer has a molecular weight in the range of approximately 1000 to 10,000.
- 85. The water-dispersible nanoparticle of claim 81, wherein the poly(acrylic acid-co-octylacrylamide) has a molecular weight in the range of approximately 1000 to 5000. 64. The composition of claim 49, wherein the hydrophobic regions represent in the range of approximately 25 wt. % to 90 wt. % of the polymer.
- 86. The composition of claim 67, wherein the polymer is a polypeptide, in which the hydrophobic regions are comprised of at least one hydrophobic amino acid and the hydrophilic regions are comprised of at least one hydrophilic amino acid.
- 87. The composition of claim 67, wherein the polymer is crosslinked.
- 88. A monodisperse population of surface-modified semiconductive or metallic nanoparticles, comprising a plurality of water-dispersible nanoparticles each comprising an inner core of a semiconductive or metallic material and, surrounding the inner core, an outer layer comprised of a multiply amphipathic dispersant, wherein the population is characterized in that it exhibits no more than about a 10% rms deviation in the diameter of the inner core.
- 89. The monodisperse population of claim 88, characterized in that the population exhibits no more than about a 5% rms deviation in the diameter of the core.
- 90. The monodisperse population of claim 88, wherein the inner core of the nanoparticles is comprised of a semiconductive material.
- 91. The monodisperse population of claim 90, wherein the semiconductive material is inorganic.
- 92. The monodisperse population of claim 91, wherein the semiconductive material is crystalline.
- 93. The monodisperse population of claim 92, wherein the nanoparticles further include a shell layer between the inner core and the outer layer.
- 94. The monodisperse population of claim 93, wherein the shell layer is comprised of a semiconductive material having a band gap energy greater than that of the inner core.
- 95. The monodisperse population of claim 88, wherein the inner core of the nanoparticles is comprised of a metallic material.
- 96. The monodisperse population of claim 88, wherein the multiply amphipathic dispersant is a polymer having two or more hydrophobic regions and two or more hydrophilic regions.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims priority to U.S. Provisional Application No. 60/240,216, filed Oct. 13, 2000.
Provisional Applications (1)
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Number |
Date |
Country |
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60240216 |
Oct 2000 |
US |