IP Library Granted Patent US 8,568,684
Granted Patent B2
US 8,568,684 · App. 12/686,803 · Granted Oct 29, 2013

Methods for synthesizing submicron doped silicon particles

Inventors: Xiangxin Bi (San Ramon, CA); Nobuyuki Kambe (Menlo Park, CA); James T. Gardner (San Jose, CA); Ronald J. Mosso (Fremont, CA); Shivkumar Chiruvolu (San Jose, CA); Sujeet Kumar (Newark, CA); William E. McGovern (LaFayette, CA)
Assignee: NanoGram Corporation
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Quick Facts
Patent No.
US 8,568,684
App. No.
12/686,803
Granted
Oct 29, 2013
Kind
B2
Abstract

Methods are described that have the capability of producing submicron/nanoscale particles, in some embodiments dispersible, at high production rates. In some embodiments, the methods result in the production of particles with an average diameter less than about 75 nanometers that are produced at a rate of at least about 35 grams per hour. In other embodiments, the particles are highly uniform. These methods can be used to form particle collections and/or powder coatings. Powder coatings and corresponding methods are described based on the deposition of highly uniform submicron/nanoscale particles.

Claims (23)

1. A method for the synthesis of selected inorganic submicron particles, the method comprising:

reacting a silicon precursor and a dopant precursor within a flow through a reaction chamber to form product particles, wherein the precursors are delivered from one or more inlets through a reaction zone within the reaction chamber and wherein the flow of precursors comprises only gases; and

collecting the product particles in a collector wherein the product particles comprise doped silicon particles having an average particle size no more than about 250 nm.

2. The method of claim 1 wherein the reacting of the precursors is driven by a light beam.

3. The method of claim 2 wherein the light beam is generated by a laser.

4. The method of claim 3 wherein the laser is an infrared laser.

5. The method of claim 2 wherein the inlet has an elongated shape that generates an elongated flow aligned to pass the elongated flow through the light beam.

6. The method of claim 5 wherein the reactant inlet nozzle comprises an inlet opening that is elongated with an aspect ratio of at least about 5.

7. The method of claim 1 wherein the reacting of the flow is driven thermally through the delivery of heat energy to the flow.

8. The method of claim 1 wherein the dopant comprises B, Al, Ga, In, or combinations thereof.

9. The method of claim 1 wherein the dopant comprises P, Sb or combinations thereof.

10. The method of claim 1 wherein the product particles have a dopant concentration from about 0.001 to about 5 mole percent.

11. The method of claim 1 wherein the product particles are crystalline.

12. The method of claim 1 wherein the chamber pressure during the reaction is from about 80 Torr to about 650 Torr.

13. The method of claim 1 wherein the collector is associated with a collection system connected to the reaction chamber such that the flow of product particles enters the collection system.

14. The method of claim 1 wherein the product particles can be harvested from the collection system in a continuous operation mode.

15. The method of claim 1 wherein the product particles comprise effectively no particles with a primary particle diameter greater than about 4 times the average particle diameter.

16. The method of claim 1 wherein at least about 95 percent of the product particles have a primary particle diameter greater than about 60 percent of the average primary particle diameter and less than about 140 percent of the average primary particle diameter.

17. The method of claim 1 wherein the dopant precursor comprises BH 3 or B 2 H 6 .

18. The method of claim 1 wherein the dopant precursor comprises PH 3 .

19. A method for the synthesis of selected inorganic submicron particles, the method comprising:

reacting a germanium precursor and a dopant precursor within a flow through a reaction chamber to form product particles, wherein the precursors are delivered from one or more inlets through a reaction zone within the reaction chamber and wherein the flow of precursors only comprises gases; and

collecting the product particles in a collector wherein the product particles comprise doped germanium particles having an average particle size no more than about 250 nm.

Continuity (23)
Continuation 12152428 · May 13, 2008
Continuation 11357711 · Feb 17, 2006
Division 10195851 · Jul 15, 2002
Continuation In Part 09715935 · Nov 17, 2000
Continuation In Part 09818141 · Mar 27, 2001
Continuation In Part 09843195 · Apr 26, 2001
Continuation In Part 09845985 · Apr 30, 2001
Continuation In Part 09969025 · Oct 1, 2001
Continuation In Part PCTUS0132413 · Oct 16, 2001
Continuation In Part PCTUS0201702 · Jan 17, 2002
Continuation In Part 10027906 · Dec 21, 2001
Continuation In Part 10083967 · Feb 25, 2002
Continuation In Part 10099597 · Mar 15, 2002
Continuation In Part 10119645 · Apr 10, 2002
Provisional Application 60313588 · Aug 17, 2001
Provisional Application 60309887 · Aug 3, 2001
Provisional Application 60262273 · Jan 17, 2001
Provisional Application 60262274 · Jan 17, 2001
Provisional Application 60315438 · Aug 28, 2001
Provisional Application 60265169 · Jan 26, 2001
Provisional Application 60241200 · Oct 17, 2000
Related Publication 20100209328A1 · Aug 19, 2010
Related Publication 20120244060A9 · Sep 27, 2012