IP Library Granted Patent US 8,679,300
Granted Patent B2
US 8,679,300 · App. 13/200,315 · Granted Mar 25, 2014

Integrated rig for the production of boron nitride nanotubes via the pressurized vapor-condenser method

Inventors: Michael W. Smith (Newport News, VA); Kevin C. Jordan (Newport News, VA)
Assignees: Jefferson Science Associates, LLC; The United States of America as represented by the Administrator of Nasa
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Quick Facts
Patent No.
US 8,679,300
App. No.
13/200,315
Granted
Mar 25, 2014
Kind
B2
Abstract

An integrated production apparatus for production of boron nitride nanotubes via the pressure vapor-condenser method. The apparatus comprises: a pressurized reaction chamber containing a continuously fed boron containing target having a boron target tip, a source of pressurized nitrogen and a moving belt condenser apparatus; a hutch chamber proximate the pressurized reaction chamber containing a target feed system and a laser beam and optics.

Claims (28)

1. An integrated production apparatus for production of boron nitride nanotubes via the pressure vapor-condenser method, the apparatus comprising:

a. a pressurized reaction chamber containing a continuously fed boron containing target having a boron target tip, a source of pressurized nitrogen and a moving belt condenser apparatus;

b. a hutch chamber proximate the pressurized reaction chamber containing a target feed system wherein the target feed system provides the continuously fed boron containing target to the pressurized reaction chamber, and a nitrogen control system in communication in communication with the source of pressurized nitrogen;

c. a beam tube extending through said hutch chamber;

d. an end portion turning mirror external to said hutch chamber; and

e. a laser beam and optics wherein the optics direct the laser beam through said beam tube and to said end portion turning mirror, said end portion turning minor aligning said laser beam to impact said boron target in said pressurized reaction chamber.

2. The integrated production apparatus of claim 1 wherein the laser beam has a laser beam end portion and the laser beam end portion has a laser beam terminus and the laser beam terminus is aligned to impact the boron target tip at an angle approximately normal to the boron target tip.

3. The integrated production apparatus of claim 2 wherein the hutch chamber has a first chamber wall proximate the pressurized chamber and the laser beam end portion has a beam path wherein the angle formed between the first chamber wall and the beam path of the laser beam end portion is about 23°±5°.

4. The integrated production apparatus of claim 2 , wherein said end portion turning minor directs said laser beam end portion and said laser beam terminus into the pressurized reaction chamber.

5. The integrated production apparatus of claim 1 , wherein said integrated production apparatus is equipped with an exhaust.

6. The integrated production apparatus of claim 5 , wherein the exhaust is equipped with a HEPA filter and a flow meter.

7. The integrated production apparatus of claim 1 , wherein the nitrogen source is a pressurized line and the nitrogen control system comprise a needle valve, pressurized gauge and a regulator.

8. The integrated production apparatus of claim 1 , wherein a plurality of transparent turning minors direct the laser beam though the hutch chamber.

9. The integrated production apparatus of claim 1 , wherein the target feed system comprises a target support, a motor driven target feed and a target position adjuster.

10. The integrated production apparatus of claim 1 , wherein the moving belt condenser apparatus comprises a moving belt having an adjustable rate of movement and a belt surface.

11. The integrated production apparatus of claim 10 , wherein the position of the moving belt condenser is adjustable.

12. The integrated production apparatus of claim 11 , wherein the moving belt condenser is placed proximate and spaced apart from the target tip and the position of the belt surface is adjustable with respect to the position of the target tip.

13. The integrated production apparatus of claim 1 further comprising a safety shield positionable to surround at least a portion of the pressurized reaction chamber.

14. A method of producing boron nitride nanotubes, the method comprising:

a. providing an integrated production apparatus, the apparatus comprising: a pressurized reaction chamber containing a continuously fed boron containing target having a boron target tip, a source of pressurized nitrogen and a moving belt condenser apparatus including a belt surface; a hutch chamber proximate the pressurized reaction chamber containing a target feed system wherein the target feed system provides the continuously fed boron containing target to the pressurized reaction chamber, a nitrogen control system in communication with the pressurized nitrogen, a beam tube extending through said hutch chamber, an end portion turning minor external to said hutch chamber, a laser beam and optics wherein the optics direct the laser beam through said beam tube and to said end portion turning mirror, said end portion turning mirror aligning said laser beam to impact said boron target in said pressurized reaction chamber; and a safety shield positionable to surround at least a portion of the pressurized chamber;

b. providing nitrogen gas to the pressurized reaction chamber to maintain a pressure of about 150 to 200 psi in the pressurized reaction chamber;

c. providing a laser beam and maintaining a laser power of about 1000 to about 2500 W;

d. directing the laser beam to the tip of the boron target; and

e. collecting boron nitride nanotubes on the belt surface of the moving belt condenser apparatus.

15. The method of claim 14 , further comprising positioning the safety shield to cover the pressurized reaction chamber.

16. The method of claim 14 , further comprising moving the belt surface to change the position of the belt surface with respect to the target tip.

17. The method of claim 14 , wherein the laser beam is produced by a CO 2 laser.

18. The method of claim 14 , wherein at least 30% of the collected boron nitride nanotubes are boron nitride nanotube filaments at least 1 cm in length.

Assignments (5)
CHANGE OF NAME Recorded Jul 20, 2026
From: JEFFERSON SCIENCE ASSOCIATES, LLC
To: SURATECH, LLC
Reel/Frame 075325/0963 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 26, 2011
From: JORDAN, KEVIN
To: JEFFERSON SCIENCE ASSOCIATES, LLC
Reel/Frame 027444/0314 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 12, 2011
From: SMITH, MICHAEL W.
To: NATIONAL AERONAUTICS AND SPACE ADMINISTRATION, UNITED STATES GOVERNMENT AS REPRESENTED BY THE ADMINISTRATOR OF
Reel/Frame 027497/0839 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 12, 2011
From: JORDAN, KEVIN
To: JEFFERSON SCIENCE ASSOCIATES, LLC
Reel/Frame 027497/0844 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 8, 2011
From: SMITH, MICHAEL W.
To: UNITED STATES OF AMERICA AS REPRESENTED BY THE ADMINISTRATOR OF THE NATIONAL AERONAUTICS AND SPACE ADMINISTRATION
Reel/Frame 027347/0143 →
Continuity (4)
Continuation In Part 12387703 · May 6, 2009
Continuation In Part 12322591 · Feb 4, 2009
Provisional Application 61460993 · Jan 11, 2011
Related Publication 20120175242A1 · Jul 12, 2012