| Literature DB >> 20596340 |
F Solá, A Biaggi-Labiosa, L F Fonseca, O Resto, M Lebrón-Colón, M A Meador.
Abstract
The short-range order of individual fractal-like amorphous carbon nanotips was investigated by means of energy-filtered electron diffraction in a transmission electron microscope (TEM). The nanostructures were grown in porous silicon substrates in situ within the TEM by the electron beam-induced deposition method. The structure factor S(k) and the reduced radial distribution function G(r) were calculated. From these calculations a bond angle of 124 degrees was obtained which suggests a distorted graphitic structure. Field emission was obtained from individual nanostructures using two micromanipulators with sub-nanometer positioning resolution. A theoretical three-stage model that accounts for the geometry of the nanostructures provides a value for the field enhancement factor close to the one obtained experimentally from the Fowler-Nordheim law.Entities:
Year: 2009 PMID: 20596340 PMCID: PMC2894329 DOI: 10.1007/s11671-009-9270-5
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Figure 1TEM image of a fractal-like a-C nanotips obtained by TEM-EBID method
Figure 2aLow loss EELS showing the Plasmon energy at 21.4 eV.bC–K ELNES of a nanostructure typical of highlysp2amorphous carbon
Figure 3aEFCBED pattern showing diffuse rings typical of an amorphous structure. The central spot is at the right corner.bPlot of the structure factorS(k) withkmax = 6 Å−1.cCorresponding reduced RDF plot of (b), where first and second nearest-neighbors distance peaks are marked 1 and 2, respectively
Figure 4aSEM image of our FE set-up. The inset is the TEM image representative of the type of fractal nanorods tested; the scale bar is 200 nm.bFE current curve obtained at a distance of 252 nm and the inset is the linear FN plot.cSchematic representation of the three-stage model. Thesolid linecorresponds to the first stage and so on