| Literature DB >> 28381075 |
Smail Hamamda1, Ahmed Jari1, S Revo2, K Ivanenko3, Youcef Jari1, T Avramenko3.
Abstract
The aim of this research is the thermostructural study of Cu-Ti, Cu-Ti 1 vol% multiwall carbon nanotubes (MWCNTs) and Cu-Ti 3 vol% MWCNTs. Several investigation techniques were used to achieve this objective. Dilatometric data show that the coefficient of thermal expansion of the nanocomposite containing less multiwall carbon nanotubes is linear and small. The same nanocomposite exhibits regular heat transfer and weak mass exchange with the environment. Raman spectroscopy shows that the nanocomposite with more MWCNTs contains more defects. This implies that the carbon nanotubes have better dispersion in Cu-Ti 1 vol% MWCNTs. Infrared spectroscopy reveals that Cu-Ti 1 vol% MWCNTs has better crystallinity than Cu-Ti 3 vol% MWCNTs.Entities:
Keywords: Copper; Nanotube; Spectroscopy; Thermal expansion; Titanium
Year: 2017 PMID: 28381075 PMCID: PMC5380572 DOI: 10.1186/s11671-017-2025-9
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Fig. 1The relative variation in length, ΔL/L, with temperature of the three materials: Cu-Ti (1), Cu-Ti 1 vol% MWCNTs (2) and Cu-Ti 3 vol% MWCNTs (3)
Fig. 2Variation with temperature of the coefficient of thermal expansion measured in the direction perpendicular to the rolling plane of Cu-Ti (1), Cu-Ti 1 vol% MWCNTs (2) and Cu-Ti 3 vol% MWCNTs (3)
Fig. 3Differential scanning calorimetry curves of Cu-Ti (1), Cu-Ti 1 vol% MWCNTs (2) and Cu-Ti 3 vol% MWCNTs (3)
Fig. 4Thermogravimetric curves of Cu-Ti (1), Cu-Ti 1 vol% MWCNTs (2) and Cu-Ti 3 vol.% MWCNTs (3)
Fig. 5Infrared spectra of Cu-Ti (1), Cu-Ti 1 vol% MWCNTs (2) and Cu-Ti 3 vol% MWCNTs (3)