Structure and Mechanical Properties of Multi-Walled Carbon Nanotubes-Filled Isotactic Polypropylene Composites Treated by Pressurization at Different Rates

Isotactic polypropylene filled with 1 wt.% multi-walled carbon nanotubes (iPP/MWCNTs) were prepared, and their crystallization behavior induced by pressurizing to 2.0 GPa with adjustable rates from 2.5 to 1.3 &#215; 10<sup>4</sup> MPa/s was studied. The obtained samples were characte...

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Bibliographic Details
Main Authors: Xiaoting Li, Wenxia Jia, Beibei Dong, Huan Yuan, Fengmei Su, Zhen Wang, Yaming Wang, Chuntai Liu, Changyu Shen, Chunguang Shao
Format: Article
Language:English
Published: MDPI AG 2019-08-01
Series:Polymers
Subjects:
Online Access:https://www.mdpi.com/2073-4360/11/8/1294
Description
Summary:Isotactic polypropylene filled with 1 wt.% multi-walled carbon nanotubes (iPP/MWCNTs) were prepared, and their crystallization behavior induced by pressurizing to 2.0 GPa with adjustable rates from 2.5 to 1.3 &#215; 10<sup>4</sup> MPa/s was studied. The obtained samples were characterized by combining wide angle X-ray diffraction, small angle X-ray scattering, differential scanning calorimetry, transmission electron microscopy and atomic force microscopy techniques. It was found that pressurization is a simple way to prepare iPP/MWCNTs composites in mesophase, &#947;-phase, or their blends. Two threshold pressurization rates marked as <b>R<sub>1</sub></b> and <b>R<sub>2</sub></b> were identified, while <b>R<sub>1</sub></b> corresponds to the onset of mesomorphic iPP formation. When the pressurization rate is lower than <b>R<sub>1</sub></b> only &#947;-phase generates, with its increasing mesophase begins to generate and coexist with &#947;-phase, and if it exceeds <b>R<sub>2</sub></b> only mesophase can generate. When iPP/MWCNTs crystallized in &#947;-phase, compared with the neat iPP, the existence of MWCNTs can promote the nucleation of &#947;-phase, leading to the formation of &#947;-crystal with thicker lamellae. If iPP/MWCNTs solidified in mesophase, MWCNTs can decrease the growth rate of the nodular structure, leading to the formation of mesophase with smaller nodular domains (about 9.4 nm). Mechanical tests reveal that, &#947;-iPP/MWCNTs composites prepared by slow pressurization display high Young&#8217;s modulus, high yield strength and high elongation at break, and meso-iPP/MWCNTs samples have excellent deformability because of the existence of nodular morphology. In this sense, the pressurization method is proved to be an efficient approach to regulate the crystalline structure and the properties of iPP/MWCNTs composites.
ISSN:2073-4360