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NASA NTRS · 19970020549

Fullerenes, PAH, Carbon Nanostructures, and Soot in Low Pressure Diffusion Flames

Abstract

The formation of fullerenes C 60 and C 7O is known to occur in premixed laminar benzene/oxygen/argon flames operated at reduced pressures. High resolution transmission electron microscopy (HRTEM) images of material collected from these flames has identified a variety of multishelled nanotubes and fullerene 'onions' as well as some trigonous structures. These fullerenes and nanostructures resemble the material that results from commercial fullerene production systems using graphite vaporization. As a result, combustion is an interesting method for fullerenes synthesis. If commercial scale operation is to be considered, the use of diffusion flames might be safer and less cumbersome than premixed flames. However, it is not known whether diffusion flames produce the types and yields of fullerenes obtained from premixed benzene/oxygen flames. Therefore, the formation of fullerenes and carbon nanostructures, as well as polycyclic aromatic hydrocarbons (PAH) and soot, in acetylene and benzene diffusion flames is being studied using high performance liquid chromatography (HPLC) and high resolution transmission electron microscopy (HRTEM).

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William J Grieco, Arthur L Lafleur, Lenore C Rainey, Koli Taghizadeh, John B Vander Sande, Jack B Howard. 1997-05-01. Fullerenes, PAH, Carbon Nanostructures, and Soot in Low Pressure Diffusion Flames. https://ntrs.nasa.gov/citations/19970020549

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