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Synthesis and Thermomechanical Characterization of Nylon 6/Cu Nanocomposites Produced by an Ultrasound-Assisted Extrusion Method
被引:15
|作者:
Sierra-Avila, Ruben
[1
]
Perez-Alvarez, Marissa
[2
]
Valdez-Garza, Janett
[1
]
Alberto Avila-Orta, Carlos
[1
]
Javier Jimenez-Regalado, Enrique
[1
]
Mata-Padilla, Jose M.
[3
]
Soto-Castruita, Enrique
[2
]
Cadenas-Pliego, Gregorio
[1
]
机构:
[1] Ctr Invest Quim Aplicada, Blvd Enrique Reyna 140, Saltillo 25294, Coahuila, Mexico
[2] Inst Mexicano Petr, Eje Cent Lazaro Cardenas Norte 152, Mexico City 07730, DF, Mexico
[3] Ctr Invest Quim Aplicada, Saltillo 25294, Coahuila, Mexico
基金:
“创新英国”项目;
关键词:
POLYAMIDE;
6;
NANOCOMPOSITES;
MECHANICAL-PROPERTIES;
CARBON NANOTUBES;
NANOPARTICLES;
MORPHOLOGY;
COMPOSITES;
BEHAVIOR;
PARTICLES;
D O I:
10.1155/2018/4792735
中图分类号:
T [工业技术];
学科分类号:
08 ;
摘要:
A nylon 6 nanocomposite with copper nanoparticles processed by ultrasound-assisted extrusion was prepared at concentrations between 0.01 and 0.50 wt.%, and its thermal and mechanical properties were determined. The presence of the crystalline phase alpha (alpha(1) and alpha(2)) in the polymer matrix was confirmed by X-ray diffraction, and the presence of the alpha(2) phase showed a greater increase than the alpha(1) phase as a function of the copper nanoparticle concentration., is process was attributed to secondary crystallization. Furthermore, it was determined that the chemical composition of the nanoparticles is a blend of metallic copper and cupric oxide. The formation of copper nanowires was observed by scanning electron microscopy, and the concentration of 0.10% exhibited the best dispersion in comparison with the other concentrations. The melting temperature of the nanocomposites underwent a slight decrease in comparison with the nylon 6, while thermal stability, crystallization temperature, and crystallinity were increased in relation to the pure polymer., is behavior is attributed to an efficient dispersion of the nanoparticles and to their functionality as crystal nucleation sites. For the 0.10% concentration nanocomposite, higher mechanical properties were obtained; tensile strength increased by 8.9%, and the tensile modulus increased by 25.4%; as a consequence, elongation at break was 62% less than that of the polymer matrix.
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页数:10
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