Structure and linear viscoelasticity of polymer nanocomposites with agglomerated particles

被引:54
作者
Yu, Wei [1 ]
Wang, Jun [1 ]
You, Wei [1 ]
机构
[1] Shanghai Jiao Tong Univ, Shanghai Key Lab Elect Insulat & Thermal Aging, Dept Polymer Sci & Engn, Adv Rheol Inst, Shanghai 200240, Peoples R China
基金
中国国家自然科学基金;
关键词
Nanocomposites; Rheology; Structure; MECHANICAL REINFORCEMENT; RHEOLOGICAL PROPERTIES; CARBON NANOTUBES; BULK STRESS; MORPHOLOGY; MODEL; SUSPENSION; DISPERSION; EMULSIONS; FLOW;
D O I
10.1016/j.polymer.2016.06.028
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
The connection between the structures and the linear viscoelasticity was revealed in this work for polymer nanocomposites containing agglomerated particles. A new image analysis method using the greyscale histogram of TEM images was suggested to determine the local volume fraction of nanoparticles inside an agglomerate, which represents the degree of agglomeration. It is found that the local volume fraction of nanoparticles is strongly related to the particle-polymer interaction. Such result was justified by a new rheological analysis based on the recently suggested modulus decomposition in the linear viscoelastic properties of polymer nanocomposites, from which the combined shift factor due to the hydrodynamic effect was used to quantify the local volume fraction of nanoparticles. Moreover, a two phase model was suggested to describe the linear viscoelasticity of such polymer nanocomposites. The success of this model in different polymer nanocomposites implies the rationality to regard the isolated agglomerate as a composite droplet in the polymer matrix. (C) 2016 Elsevier Ltd. All rights reserved.
引用
收藏
页码:190 / 200
页数:11
相关论文
共 50 条
[31]   Structure-property relations in linear viscoelasticity of supramolecular hydrogels [J].
Drozdov, Aleksey D. ;
Christiansen, Jesper deClaville .
RSC ADVANCES, 2021, 11 (28) :16860-16880
[32]   Structure, scattering patterns and phase behavior of polymer nanocomposites with nonspherical fillers [J].
Hall, Lisa M. ;
Schweizer, Kenneth S. .
SOFT MATTER, 2010, 6 (05) :1015-1025
[33]   INFLUENCE OF THE FORMATION SPACE ON THE STRUCTURE AND PROPERTIES OF POLYMER/CARBON NANOTUBE NANOCOMPOSITES [J].
Kozlov, G., V ;
Dolbin, I., V .
IZVESTIYA VYSSHIKH UCHEBNYKH ZAVEDENII KHIMIYA I KHIMICHESKAYA TEKHNOLOGIYA, 2022, 65 (01) :38-43
[34]   Viscoelasticity and thermal stability of poly(arylene ether nitrile) nanocomposites with various functionalized carbon nanotubes [J].
Zhan, Yingqing ;
Yang, Xulin ;
Meng, Fanbin ;
Lei, Yajie ;
Zhong, Jiachun ;
Zhao, Rui ;
Liu, Xiaobo .
POLYMER INTERNATIONAL, 2011, 60 (09) :1342-1348
[35]   Ultrasound assisted synthesis of polymer nanocomposites: a review [J].
Soman, Vishnu ;
Vishwakarma, Kavita ;
Poddar, Maneesh Kumar .
JOURNAL OF POLYMER RESEARCH, 2023, 30 (11)
[36]   Polymer Nanocomposites from Organoclays: Structure and Properties [J].
Cui, Lili ;
Paul, D. R. .
EUROFILLERS, 2011, 301 :9-15
[37]   The influence of interfacial agents on the morphology and viscoelasticity of PP/MMT nanocomposites [J].
Dal Castel, C. ;
Bianchi, O. ;
Oviedo, M. A. S. ;
Liberman, S. A. ;
Mauler, R. S. ;
Oliveira, R. V. B. .
MATERIALS SCIENCE & ENGINEERING C-BIOMIMETIC AND SUPRAMOLECULAR SYSTEMS, 2009, 29 (02) :602-606
[38]   Linear viscoelasticity of immiscible blends: The application of creep [J].
Shaayegan, Vahid ;
Wood-Adams, Paula ;
Demarquette, Nicole Raymonde .
JOURNAL OF RHEOLOGY, 2012, 56 (05) :1039-1056
[39]   Nanocomposites of polymers and inorganic particles: preparation, structure and properties [J].
Caseri, W. R. .
MATERIALS SCIENCE AND TECHNOLOGY, 2006, 22 (07) :807-817
[40]   Molecular dynamics simulation of the viscoelasticity of polymer nanocomposites under oscillatory shear: effect of interfacial chemical coupling [J].
Li, Ziwei ;
Liu, Jun ;
Zhang, Zhiyu ;
Gao, Yangyang ;
Liu, Li ;
Zhang, Liqun ;
Yuan, Binbin .
RSC ADVANCES, 2018, 8 (15) :8141-8151