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Growth of Metal Oxide Nanowires from Supercooled Liquid Nanodroplets
- Source :
- Nano Letters
- Publication Year :
- 2009
- Publisher :
- American Chemical Society (ACS), 2009.
-
Abstract
- Nanometer-sized liquid droplets formed at temperatures below the bulk melting point become supercooled as they grow through Ostwald ripening or coalescence and can be exploited to grow nanowires without any catalyst. We used this simple approach to synthesize a number of highly crystalline metal oxide nanowires in a chemical or physical vapor deposition apparatus. Examples of nanowires made in this way include VO(2), V(2)O(5), RuO(2), MoO(2), MoO(3), and Fe(3)O(4), some of which have not been previously reported. Direct evidence of this new mechanism of nanowire growth is found from in situ 2-dimensional GISAXS (grazing incidence small angle X-ray scattering) measurements of VO(2) nanowire growth, which provides quantitative information on the shapes and sizes of growing nanowires as well as direct evidence of the presence of supercooled liquid droplets. We observe dramatic changes in nanowire growth by varying the choice of substrate, reflecting the influence of wetting forces on the supercooled nanodroplet shape and mobility as well as substrate-nanowire lattice matching on the definition of nanowire orientation. Surfaces with defects can also be used to pattern the growth of the nanowires. The simplicity of this synthesis concept suggests it may be rather general in its application.
- Subjects :
- Ostwald ripening
Materials science
Macromolecular Substances
Surface Properties
Molecular Conformation
Nanowire
Metal Nanoparticles
Mineralogy
Bioengineering
symbols.namesake
Materials Testing
Nanotechnology
General Materials Science
Particle Size
Vapor–liquid–solid method
Supercooling
Coalescence (physics)
Mechanical Engineering
Oxides
General Chemistry
Condensed Matter Physics
Cold Temperature
Solutions
Chemical physics
symbols
Melting point
Grazing-incidence small-angle scattering
Wetting
Crystallization
Subjects
Details
- ISSN :
- 15306992 and 15306984
- Volume :
- 9
- Database :
- OpenAIRE
- Journal :
- Nano Letters
- Accession number :
- edsair.doi.dedup.....7db2a59fd5f9e847a35b098f7963e7a4