Electrical, Thermal, and Morphological Properties of Poly(ethylene terephthalate)-Graphite Nanoplatelets Nanocomposites

被引:7
作者
Alshammari, Basheer A. [1 ]
Wilkinson, Arthur N. [2 ,3 ]
Almutairi, Ghzzai [4 ]
机构
[1] King Abdulaziz City Sci & Technol, Mat Res Inst, POB 6086, Riyadh 11442, Saudi Arabia
[2] Univ Manchester, Sch Mat, Mat Sci Ctr, Grosvenor St, Manchester M13 9PL, Lancs, England
[3] Univ Manchester, Sch Mat, North West Composites Ctr, Grosvenor St, Manchester M13 9PL, Lancs, England
[4] King Abdulaziz City Sci & Technol, Water & Energy Res Inst, POB 6086, Riyadh 11442, Saudi Arabia
关键词
TWIN-SCREW EXTRUSION; CARBON NANOTUBES; EXFOLIATED GRAPHITE; CONDUCTIVITY; DISPERSION; STABILITY;
D O I
10.1155/2017/6758127
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
Graphite nanoplatelets (GNP) were incorporated with poly(ethylene terephthalate) (PET) matrix by melt-compounding technique using minilab compounder to produce PET-GNP nanocomposites, and then the extruded nanocomposites were compressed using compression molding to obtain films of 1 mm thickness. Percolation threshold value was determined using percolation theory. The electrical conductivity, morphology, and thermal behaviors of these nanocomposites were investigated at different contents of GNP, that is, below, around, and above its percolation threshold value. The results demonstrated that the addition of GNP at loading >5 wt.% made electrically conductive nanocomposites. An excellent electrical conductivity of similar to 1S/m was obtained at 15 wt.% of GNP loading. The nanocomposites showed a typical insulator-conductor transition with a percolation threshold value of 5.7 wt.% of GNP. In addition, increasing screw speed enhanced the conductivity of the nanocomposites above its threshold value by similar to 2.5 orders of magnitude; this behavior is attributed to improved dispersion of these nanoparticles into the PET matrix. Microscopies results exhibited no indication of aggregations at 2 wt.% of GNP; however, some rolling up at 6 wt.% of GNP contents was observed, indicating that a conductive network has been formed, whereas more agglomeration and rolling up could be seen as the GNP content is increased in the PET matrix. These agglomerations reduced their aspect ratio and then reduced their reinforcement efficiency. NP loading (>2 wt.%) increased degree of crystallinity and improved thermal stability of matrix slightly, suggesting that 2 wt.% of GNP is more than enough to nucleate the matrix.
引用
收藏
页数:9
相关论文
共 50 条
  • [21] Low electrical percolation threshold in poly(ethylene terephthalate)/multi-walled carbon nanotube nanocomposites
    Logakis, Emmanuel
    Pissis, Polycarpos
    Pospiech, Doris
    Korwitz, Andreas
    Krause, Beate
    Reuter, Uta
    Poetschke, Petra
    EUROPEAN POLYMER JOURNAL, 2010, 46 (05) : 928 - 936
  • [22] Electrical, mechanical and thermal properties of graphene nanoplatelets reinforced UHMWPE nanocomposites
    Alam, Fahad
    Choosri, M.
    Gupta, Tejendra K.
    Varadarajan, K. M.
    Choi, D.
    Kumar, S.
    MATERIALS SCIENCE AND ENGINEERING B-ADVANCED FUNCTIONAL SOLID-STATE MATERIALS, 2019, 241 : 82 - 91
  • [23] Oxygen Barrier Properties and Melt Crystallization Behavior of Poly(ethylene terephthalate)/Graphene Oxide Nanocomposites
    Szymczyk, Anna
    Paszkiewicz, Sandra
    Pawelec, Iwona
    Lisiecki, Slawomir
    Jotko, Marek
    Spitalsky, Zdenko
    Mosnacek, Jaroslav
    Roslaniec, Zbigniew
    JOURNAL OF NANOMATERIALS, 2015, 2015
  • [24] Effect of Dispersion of Carbon Black on Electrical and Thermal Properties of Poly(Ethylene Terephthalate)/Carbon Black Composites
    Liu, Yongjun
    Zhi zhongsu
    Li, Xianhui
    Guo, Weihong
    Li, Qiuying
    Wu, Chifei
    JOURNAL OF MACROMOLECULAR SCIENCE PART B-PHYSICS, 2009, 48 (01): : 146 - 156
  • [25] Effects of Dispersion and Ultraviolet/Ozonolysis Functionalization of Graphite Nanoplatelets on the Electrical Properties of Epoxy Nanocomposites
    Yakovenko, Olena
    Matzui, Ludmila
    Perets, Yulia
    Ovsiienko, Iryna
    Brusylovets, Oleksii
    Vovchenko, Ludmila
    Szroeder, Pawel
    NANOPHYSICS, NANOPHOTONICS, SURFACE STUDIES, AND APPLICATIONS, 2016, 183 : 477 - 491
  • [26] Preparation and characterization of BaSO4/poly(ethylene terephthalate) nanocomposites
    Gao, Wei
    Zhou, Bing
    Ma, Xiaoyu
    Liu, Yan
    Wang, Zichen
    Zhu, Yanchao
    COLLOIDS AND SURFACES A-PHYSICOCHEMICAL AND ENGINEERING ASPECTS, 2011, 385 (1-3) : 181 - 187
  • [27] Poly(ethylene terephthalate)/Layered Double Hydroxide Nanocomposites
    Cao Tian-Chi
    Chen Guang-Ming
    Guo Cun-Yue
    CHEMICAL JOURNAL OF CHINESE UNIVERSITIES-CHINESE, 2013, 34 (10): : 2239 - 2246
  • [28] Electrical properties of polymer/expanded graphite nanocomposites with low percolation
    Goyal, R. K.
    Samant, S. D.
    Thakar, A. K.
    Kadam, A.
    JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2010, 43 (36)
  • [29] Electrical, thermal, and viscoelastic properties of graphene nanoplatelet/poly(butylene adipate-co-terephthalate) biodegradable nanocomposites
    Kashi, Sima
    Gupta, Rahul K.
    Kao, Nhol
    Bhattacharya, Sati N.
    JOURNAL OF APPLIED POLYMER SCIENCE, 2016, 133 (27)
  • [30] Morphology and properties of polymer/organoclay nanocomposites based on poly(ethylene terephthalate) and sulfopolyester blends
    Ghanbari, Abbas
    Heuzey, Marie-Claude
    Carreau, Pierre J.
    Ton-That, Minh-Tan
    POLYMER INTERNATIONAL, 2013, 62 (03) : 439 - 448