IP Library Granted Patent US 6,979,709
Granted Patent B2
US 6,979,709 · App. 10/033,076 · Granted Dec 27, 2005

Continuous fiber of single-wall carbon nanotubes

Assignee: William Marsh Rice University
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Quick Facts
Patent No.
US 6,979,709
App. No.
10/033,076
Granted
Dec 27, 2005
Kind
B2
Abstract

This invention relates generally to carbon fiber produced from single-wall carbon nanotube (SWNT) molecular arrays. In one embodiment, the present invention involves a macroscopic carbon fiber comprising at least 10 6 signal-wall carbon nanotubes in generally parallel orientation.

Claims (34)

1. A macroscopic carbon fiber comprising at least about 10 6 single-wall carbon nanotubes bundled together in generally parallel orientation.

2. The fiber of claim 1 comprising at least about 10 9 single-wall carbon nanotubes bundled together in generally parallel orientation.

3. A composite fiber comprising a plurality of macroscopic carbon fibers, wherein the macroscopic carbon fibers comprises at least about 10 6 single-wall carbon nanotubes bundled together in generally parallel orientation.

4. A molecular template array for growing continuous length carbon fiber comprising a segment of macroscopic carbon fiber, wherein the macroscopic carbon fiber comprises at least about 10 6 single-wall carbon nanotubes bundled together in generally parallel orientation.

5. The fiber of claim 1 having a length of at least 1 millimeter.

6. The fiber of claim 1 wherein a substantial portion of said nanotubes are of the (n,n) type.

7. The fiber of claim 1 wherein all of said nanotubes are not of the same type.

8. A composite article of manufacture comprising a matrix material selected from the group consisting of metals, polymers, ceramics and cermets, said matrix comprising macroscopic carbon fibers, wherein the macroscopic carbon fibers comprises at least about 10 6 single-wall carbon nanotubes bundled together in generally parallel orientation.

9. A high voltage power transmission cable wherein at least one conductor comprises a continuous carbon fiber, wherein

a) the continuous carbon fiber comprises at least about 10 6 single-wall carbon nanotubes bundled together in generally parallel orientation; and

b) a substantial portion of said nanotubes are of the (n,n) type.

10. The power transmission cable of claim 9 wherein both a central conductor and a coaxially disposed outer conductor are formed from said carbon fiber and an insulating layer is dispose therebetween.

11. The power transmission cable of claim 10 wherein said insulating layer is an air space.

12. The power transmission cable of claim 10 wherein said insulating layer comprises a material selected from the group consisting of insulating carbon fiber made from carbon nanotubes of the (m,n) type and insulating BN fiber made from hexaboronitride nanotubes or mixtures thereof.

13. The fiber of claim 1 wherein the single-wall carbon nanotubes are arranged in a regular angular lattice.

14. The fiber of claim 1 wherein the fiber has a cross sectional dimension of at least one micron.

15. The fiber of claim 1 wherein the fiber has a cross sectional dimension in the range between about one micron and about ten microns.

16. The fiber of claim 1 wherein the fiber is at least one millimeter in length.

17. The fiber of claim 1 further comprising a dopant intercalated between the single-wall carbon nanotubes.

18. The fiber of claim 17 wherein the dopant comprises a substance selected from the group consisting of metals, halogens, FeCl 3 and combinations thereof.

19. A spun thread comprising a plurality of macroscopic carbon fibers, wherein at least some of the plurality of the macroscopic carbon fibers comprise at least about 10 6 single-wall carbon nanotubes bundled together in generally parallel orientation.

20. A yarn comprising a plurality of macroscopic carbon fibers, wherein at least some of the plurality of the macroscopic carbon fibers comprise at least about 10 6 single-wall carbon nanotubes bundled together in generally parallel orientation.

21. A chemical filter comprising a plurality of macroscopic carbon fibers, wherein at least some of the plurality of the macroscopic carbon fibers comprise at least about 10 6 single-wall carbon nanotubes bundled together in generally parallel orientation.

22. A catalyst support comprising a plurality of macroscopic carbon fibers, wherein at least some of the plurality of the macroscopic carbon fibers comprise at least about 10 6 single-wall carbon nanotubes bundled together in generally parallel orientation.

23. A hydrogen storage material comprising a plurality of macroscopic carbon fibers, wherein at least some of the plurality of the macroscopic carbon fibers comprise at least about 10 6 single-wall carbon nanotubes bundled together in generally parallel orientation and wherein the hydrogen storage material is capable of absorbing hydrogen.

24. A pressure vessel for hydrogen storage comprising a plurality of macroscopic carbon fibers, wherein at least some of the plurality of the macroscopic carbon fibers comprise at least about 10 6 single-wall carbon nanotubes bundled together in generally parallel orientation.

25. A capacitor membrane comprising a plurality of macroscopic carbon fibers, wherein at least some of the plurality of the macroscopic carbon fibers comprise at least about 10 6 single-wall carbon nanotubes bundled together in generally parallel orientation.

26. An electromechanical device comprising a plurality of macroscopic carbon fibers, wherein at least some of the plurality of the macroscopic carbon fibers comprise at least about 10 6 single-wall carbon nanotubes bundled together in generally parallel orientation.

27. The electromechanical device of claim 26 wherein the device is a strain gauge.

28. A power transmission cable comprising a plurality of macroscopic carbon fibers, wherein at least some of the plurality of the macroscopic carbon fibers comprise at least about 10 6 single-wall carbon nanotubes bundled together in generally parallel orientation.

29. The cable of claim 28 wherein the cable is a coaxial cable.

30. The cable of claim 28 wherein the cable comprises an outer conductor and an inner conductor and wherein at least one of the outer conductor and the inner conductor comprise plurality of single-wall carbon nanotubes.

31. The cable of claim 28 wherein the cable comprises at least two conducting elements and wherein the at last two conducting elements comprise a plurality of single-wall carbon nanotubes.

32. The cable of claim 31 wherein the cable comprises alternating metallic carbon fiber conductors and insulating layers.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 9, 2003
From: SMALLEY, RICHARD E.; COLBERT, DANIEL T.; DAI, HONGJIE; LIU, JIE; RINZLER, ANDREW G.; HAFNER, JASON H.; SMITH, KENNETH A.; GUO, TING; NIKOLAEV, PAVEL; THESS, ANDREAS
To: WILLIAM MARSH RICE UNIVERSITY
Reel/Frame 014047/0013 →
Continuity (8)
Division 0938054500
Provisional Application 6006732500 · Dec 5, 1997
Provisional Application 6006453100 · Nov 5, 1997
Provisional Application 6006367500 · Oct 29, 1997
Provisional Application 6005503700 · Aug 8, 1997
Provisional Application 6004785400 · May 29, 1997
Provisional Application 6004015200 · Mar 7, 1997
Related Publication 20020127162A1 · Sep 12, 2002