IP Library Granted Patent US 6,869,545
Granted Patent B2
US 6,869,545 · App. 10/209,312 · Granted Mar 22, 2005

Colloidal nanocrystals with high photoluminescence quantum yields and methods of preparing the same

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Quick Facts
Patent No.
US 6,869,545
App. No.
10/209,312
Granted
Mar 22, 2005
Kind
B2
Abstract

The present invention provides new compositions containing colloidal nanocrystals with high photoluminescence quantum yields, new synthetic methods for the preparation of highly luminescent colloidal nanocrystals, as well as methods to control the photoluminescent properties of colloidal nanocrystals. The new synthetic methods disclosed herein allow photoemission brightness (quantum yield) to be correlated with certain adjustable nanocrystal growth parameters associated with a given synthetic scheme.

Claims (34)

1. A composition comprising colloidal nanocrystals, prepared by the method comprising:

a) combining a cation precursor, a first ligand, and a first solvent to form a cation-ligand complex;

b) admixing an anion precursor with the cation-ligand complex at a first temperature sufficient to induce reaction therebetween, wherein the initial concentration of the anion precursor is about 10 times the initial concentration of the cation precursor in the mixture; and

c) adjusting the temperature of the mixture to a second temperature sufficient to form nanocrystals of the reaction product;

wherein the nanocrystals do not comprise tellurides.

2. A light emitting diode comprising the composition of claim 1 .

3. A biological labeling agent comprising the composition of claim 1 .

4. A photoelectric device comprising the composition of claim 1 .

5. A solar cell comprising the composition of claim 1 .

6. A catalyst comprising the composition of claim 1 .

7. A method of synthesizing colloidal nanocrystals with an improved photoluminescence quantum yield, comprising:

a) combining a cation precursor, a first ligand, and a first solvent to form a cation-ligand complex;

b) admixing an anion precursor with the cation-ligand complex at a first temperature sufficient to induce reaction therebetween, wherein the initial concentration of the anion precursor is about 10 times the initial concentration of the cation precursor in the mixture; and

c) adjusting the temperature of the mixture to a second temperature sufficient to form nanocrystals of the reaction product.

8. A method of synthesizing colloidal nanocrystals with an improved photoluminescence quantum yield, comprising:

a) combining a cation precursor, a first ligand, and a first solvent to form a cation-ligand complex;

b) admixing an anion precursor with the cation-ligand complex at a first temperature sufficient to induce reaction therebetween wherein the concentration of the anion precursor is about 20 times the concentration of the cation precursor in the mixture; and

c) adjusting the temperature of the mixture to a second temperature sufficient to form nanocrystals of the reaction product.

9. The method of claim 7 , wherein the cation precursor comprises a metal oxide, a metal carbonate, a metal bicarbonate, a metal sulfate, a metal sulfite, a metal phosphate, a metal phosphite, a metal halide, a metal carboxylate, a metal alkoxide, a metal thiolate, a metal amide, a metal imide, a metal alkyl, a metal aryl, a metal coordination complex, a metal solvate, or a metal salt.

10. The method of claim 7 , wherein the cation precursor comprises a compound of a group II metal, a group III metal, a group IV metal, or a transition metal.

11. The method of claim 7 , wherein the cation precursor comprises a compound of Cd or Zn.

12. The method of claim 7 , wherein the first ligand is selected from a fatty acid, a phosphine, a phosphine oxide, a phosphonic acid, an amine-containing dendron, or a combination thereof.

13. The method of claim 7 , wherein the first ligand is selected from oleic acid, decanoic acid, lauric acid, myristic acid, palmitic acid, stearic acid, or a combination thereof.

14. The method of claim 7 , wherein the first solvent comprises a primary amine.

15. The method of claim 7 , wherein the first solvent is selected from dodecylamine, hexadecylamine, octadecylamine, dioctylamine, or a combination thereof.

16. The method of claim 7 , wherein the anion precursor is combined with a second ligand, a second solvent, or a combination thereof, prior to admixing with the cation-ligand complex.

17. The method of claim 16 , wherein the cation precursor is CdO, the first ligand is stearic acid, the first solvent is hexadecylamine, the anion precursor is elemental selenium, and the second ligand is tributylphosphine.

18. The method of claim 7 , wherein the anion precursor is selected from an element, a covalent compound, or an ionic compound.

19. The method of claim 7 , wherein the anion precursor is selected from elemental S, elemental Se, elemental Te, selenium tributylphosphine, or tellurium tributylphosphine.

20. The method of claim 7 , wherein the second temperature is from about 250° C. to about 320° C.

21. The method of claim 7 , wherein the photoluminescence emission peak of the colloidal nanocrystals occurs from about 500 nm to about 680 nm.

22. The method of claim 7 , wherein the cation precursor is CdO, the first ligand is stearic acid, the first solvent comprises dodecylamine, the anion precursor is elemental selenium, the second temperature is below about 230° C., and the reaction product comprises zinc blende CdSe nanocrystals.

23. The method of claim 7 , wherein the cation precursor is CdO, the first ligand is stearic acid, the first solvent comprises octadecylamine, the anion precursor is elemental selenium, the second temperature is above about 270° C., and the reaction product comprises wurtzite CdSe nanocrystals.

24. The method of claim 7 , wherein the cation precursor is CdO, the first ligand is stearic acid, the first solvent comprises hexadecylamine, the anion precursor is elemental selenium, the second temperature is from about 250° C. to about 320° C., and the reaction product comprises wurtzite CdSe nanocrystals with stacking faults perpendicular to the (001) axis.

Assignments (3)
CONFIRMATORY LICENSE Recorded Nov 22, 2006
From: UNIVERSITY OF ARKANSAS
To: NATIONAL SCIENCE FOUNDATION
Reel/Frame 018546/0484 →
SECURITY AGREEMENT Recorded Feb 16, 2005
From: QUANTUM DOT CORPORATION
To: INSTITUTIONAL VENTURE PARTNERS VII, L.P.; INSTITUTIONAL VENTURE MANAGEMENT VII, L.P.; ABINGWORTH BIOVENTURES IIA LP; SCHRODER VENTURES INTERNATIONAL LIFE SCIENCES FUND II LP1; SCHRODER VENTURES INTERNATIONAL LIFE SCIENCES FUND II LP2; SCHRODER VENTURES INTERNATIONAL LIFE SCIENCES FUND II LP3; SV NOMINEES LIMITED ON BEHALF OF SCHRODER VENTURES INVESTMENTS LIMITED; SCHRODER VENTURES INTERNATIONAL LIFE SCIENCES FUND II GROUP CO-INVESTMENT SCHEME; SCHRODER VENTURES INTERNATIONAL LIFE SCIENCES FUND II STRATEGIC PARTNERS LP; FRAZIER HEALTHCARE III, L.P.; FRAZIER AFFILIATES III, L.P.; BB BIOVENTURES L.P.; MPM ASSET MANAGEMENT INVESTORS 2000 A LLC; MPM BIOVENTURES PARALLEL FUND, L.P.
Reel/Frame 015687/0106 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 28, 2002
From: PENG, XIAOGANG; QU, LIANHUA
To: BOARD OF TRUSTEES OF THE UNIVERSITY OF ARKANSAS,THE
Reel/Frame 013425/0541 →