Method of producing metal oxide nanorods

Single-crystal – oriented-crystal – and epitaxy growth processes; – Forming from vapor or gaseous state – Including change in a growth-influencing parameter

Patent

Rate now

  [ 0.00 ] – not rated yet Voters 0   Comments 0

Details

117 84, 117106, 117109, 117921, C30B 2916

Patent

active

060367741

ABSTRACT:
Methods of preparing metal oxide nanorods are described. The metal oxide nanorods have diameters between 1 and 200 nm and aspect ratios between 5 and 2000. The methods include the steps of generating a metal vapor in a furnace, exposing the nanorod growth substrate to the metal vapor within a growth zone in the furnace for a sufficient time to grow metal oxide nanorods on a surface of the nanorod growth substrate, removing the nanorod growth substrate from the growth zone after the sufficient time to grow metal oxide nanorods on a surface of the nanorod growth substrate, and removing the metal oxide nanorods from the furnace. The methods can be used to prepared large quantities of metal oxide nanorods.

REFERENCES:
patent: 3361681 (1968-01-01), Westdorp
patent: 3668062 (1972-06-01), Shyne et al.
patent: 3674455 (1972-07-01), Dugger
patent: 3711599 (1973-01-01), Brubaker
patent: 3951677 (1976-04-01), Jacobson et al.
patent: 4505877 (1985-03-01), Miyata et al.
patent: 4778716 (1988-10-01), Thorfinnson et al.
patent: 5158643 (1992-10-01), Yoshinaka et al.
patent: 5381753 (1995-01-01), Okajima et al.
patent: 5418007 (1995-05-01), Debe
patent: 5441726 (1995-08-01), Mitchnick et al.
patent: 5569445 (1996-10-01), Fukatsu et al.
Yang and Lieber, "Nanorod-Superconductor Composites: A Pathway to Materials with High Critical Current Densities, " Science, 273:1836-1840, 1996.
Adamopoulos et al., "An experimental study of flux pinning and flux dynamics. . . " Physica C 242 pp. 68-80, 1995.
Budhani et al., "Giant Suppression of Flux-Flow Resistivity . . . " Physical Review Letters, vol. 69, No. 26, pp. 3816-3819, Dec. 28, 1992.
Civale et al., "Vortex confinement by Columnar Defects . . . " Physical Review Letters vol. 67, No. 5, pp. 648-651, Jul. 29, 1991.
Fossheim et al., "Enhanced flux pinning . . . " Physica C 248, pp. 195-202, 1995.
Hayashi et al., "Growth of . . . " Journal of Materials Science 22, pp. 1305-1309, 1987.
Hwa et al., "Flux Pinning and Forced Vortex Entanglement by Splayed Columnar Defects" Physical Review Letter, vol. 71, No. 21, pp. 3545-3548, Nov. 22, 1993.
Krusin-Elbaum et al., "Enhancement of persistent currents . . . " Appl. Phys. Lett. 64 (24), pp. 3331-3333, Jun. 13, 1994.
Kummeth et al., "Enhancement of Critical Current Density . . . " Journal of Alloys and Compounds, 195, pp. 403-406, 1993.
Le Doussal et al., "Towards engineering of splayed columnar defects in type II superconductors." Physica C 232 pp. 69-74, 1994.
Levitt, "Whisker Technology. " John Wiley & Sons, Inc., 1970.
Lieber et al., "Growth and Structure of Carbide Nanorods. " Presented at the Materials Research Society, Boston Nov. 27, 1995.
Miu et al., "Bose-glass behavior of the vortex system in epitaxial . . . " Physical Review B vol. 51, No. 6, pp. 3953-3956, Feb. 1, 1995.
Nelson et al., "Boson Localization and Pinning by Correlated Disorder . . . " Physical Review Letters, vol. 68, No. 15, pp. 2398-2401, Apr. 13, 1992.
Nomura et al., "Fabrication conditions and superconducting properties of Ag-sheathed . . . " Appl. Phys. Lett. 62 (17), pp. 2131-2133, Apr. 26, 1993.
Sharma et al., "Growth of Zn0 Whiskers, Platelets, and Dendrites." Journal of Applied Physics, vol. 42, pp. 5302-5304, 1971.
Wolff et al., "Growth and Morphology of Magnesium Oxide Whiskers." Journal of the American Ceramic Society, vol. 48, No. 6, pp. 279-285, Jun. 21, 1995.
Wong et al., "Processing-Microstructure . . . " J. Am. Ceram. Soc., 77 (11) pp. 2833-40, 1994.
Yuan et al., "Whisker/matrix interface and microstructure . . . " J. Mater. Res., vol. 11, No. 1, pp. 18-27, Jan. 1996.
Yuan et al., "Superconducting properties of Mg0-whisker reinforced BPSCCO composite." Physica C 250 pp. 247-255, 1995.
Yuan et al., "Solid-state processing and phase development of bulk . . . " J. Mater. Res., vol. 11, No. 1, pp. 8-17, Jan. 1996.
Zhu et al., "In situ growth of epitaxial . . ." Appl. Phys. Lett. 63 (3), pp. 409-411, Jul. 19, 1993.

LandOfFree

Say what you really think

Search LandOfFree.com for the USA inventors and patents. Rate them and share your experience with other people.

Rating

Method of producing metal oxide nanorods does not yet have a rating. At this time, there are no reviews or comments for this patent.

If you have personal experience with Method of producing metal oxide nanorods, we encourage you to share that experience with our LandOfFree.com community. Your opinion is very important and Method of producing metal oxide nanorods will most certainly appreciate the feedback.

Rate now

     

Profile ID: LFUS-PAI-O-165064

  Search
All data on this website is collected from public sources. Our data reflects the most accurate information available at the time of publication.