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Interface and interphase of nanocomposites tailored by covalent grafting of carbon nanotube: Hierarchical multiscale modeling

Authors
Yang, S.
Issue Date
15-Apr-2022
Publisher
Elsevier Ltd
Keywords
Carbon nanotube; Covalent grafting; Interface; Interphase; Molecular dynamics simulation; Nanocomposites
Citation
International Journal of Mechanical Sciences, v.220
Journal Title
International Journal of Mechanical Sciences
Volume
220
URI
https://scholarworks.bwise.kr/cau/handle/2019.sw.cau/56694
DOI
10.1016/j.ijmecsci.2022.107160
ISSN
0020-7403
1879-2162
Abstract
Covalent grafting between carbon nanotubes (CNTs) and a polymer matrix is the most efficient way to tailor the intrinsically weak interface in nanocomposites. To understand the grafted structure-to-improved property relationship of nanocomposites, however, the degradation of grafted CNT and the properties of surrounding interphase zone should be accounted for in constitutive model. In this study, the reciprocity of the interface, interphase, and elasticity of CNTs depending on the covalent grafting between the CNT and a polyethylene terephthalate (PET) matrix were studied through molecular dynamics simulations and a mean-field micromechanical interface/interphase model. The replacement stiffness method was used to determine the effect of the tailored interface on the overall elasticity of a nanocomposite in micromechanics. The elasticity of the CNTs and the nanocomposites was determined from molecular mechanics and molecular dynamics simulations, respectively. Despite the degraded elasticity of the nanotubes, clear improvements in the transverse modulus and shear moduli were observed in the covalently grafted nanocomposites. The elasticity of the interphase was determined in terms of the number of covalent grafting and the interfacial compliance using a two-step inverse micromechanical analysis. Regardless of the number of covalent grafting addressed, the elastic moduli of the interphase were always larger than those of a neat PET matrix. Furthermore, the accuracy of the proposed multiscale micromechanical interface/interphase model at various volume fractions of CNTs was validated. © 2022 Elsevier Ltd
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Yang, Seunghwa
공과대학 (에너지시스템 공학부)
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