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1.
Nanotechnology ; 20(29): 295701, 2009 Jul 22.
Artigo em Inglês | MEDLINE | ID: mdl-19567949

RESUMO

Carbon nanotubes and nanofibers are extensively researched as reinforcing agents in nanocomposites for their multifunctionality, light weight and high strength. However, it is the interface between the nanofiber and the matrix that dictates the overall properties of the nanocomposite. The current trend is to measure elastic properties of the bulk nanocomposite and then compare them with theoretical models to extract the information on the interfacial strength. The ideal experiment is single fiber pullout from the matrix because it directly measures the interfacial strength. However, the technique is difficult to apply to nanocomposites because of the small size of the fibers and the requirement for high resolution force and displacement sensing. We present an experimental technique for measuring the interfacial strength of nanofiber-reinforced composites using the single fiber pullout technique and demonstrate the technique for a carbon nanofiber-reinforced epoxy composite. The experiment is performed in situ in a scanning electron microscope and the interfacial strength for the epoxy composite was measured to be 170 MPa.


Assuntos
Resinas Epóxi/química , Nanocompostos/química , Nanoestruturas/química , Nanotecnologia/métodos , Nanotubos de Carbono/química , Microscopia Eletrônica de Varredura , Modelos Químicos , Nanoestruturas/ultraestrutura , Análise Espectral Raman , Estresse Mecânico , Tungstênio/química
2.
Nanoscale Res Lett ; 5(1): 14-19, 2009 Sep 23.
Artigo em Inglês | MEDLINE | ID: mdl-20652145

RESUMO

Glassy carbon is a disordered, nanoporous form of carbon with superior thermal and chemical stability in extreme environments. Freestanding glassy carbon specimens with 4-6 nm thickness and 0.5 nm average pore size were synthesized and fabricated from polyfurfuryl alcohol precursors. Elastic properties of the specimens were measured in situ inside a scanning electron microscope using a custom-built micro-electro-mechanical system. The Young's modulus, fracture stress and strain values were measured to be about 62 GPa, 870 MPa and 1.3%, respectively; showing strong size effects compared to a modulus value of 30 GPa at the bulk scale. This size effect is explained on the basis of the increased significance of surface elastic properties at the nanometer length-scale.

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