Design and fabrication of electro-conductive polymer nanocomposites with mechanical and thermal resistance

被引:0
|
作者
Batool, Maria [1 ]
Nadeem, QuratulAin [1 ]
Gill, Rohama [1 ]
Nadeem, Raziya [2 ]
机构
[1] Fatima Jinnah Women Univ, Dept Environm Sci, Rawalpindi 46000, Pakistan
[2] Univ Agr Faisalabad, Dept Chem, Faisalabad, Pakistan
关键词
polymer nanocomposites; semiconductors; electrical conductivity; mechanical behaviour; thermal analysis; ELECTRICAL-CONDUCTIVITY; ELECTROLESS DEPOSITION; CARBON NANOTUBES; COMPOSITES; COPPER; GRAPHITE; POLYPROPYLENE; NETWORK; PERCOLATION; PARTICLES;
D O I
10.1002/pi.5623
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 commencement of the industrial revolution paved the way for the fabrication of flexible polymers with high-strength metalloceramics as novel materials of all kinds. Fabricating metal-ceramic/polymer conductive composites is one such dimension followed for the present research work making use of the properties of the three components. Electroless deposition, for permanent metallic coating, was performed to coat Al2O3 with metallic Cu followed by the inclusion of the Cu-Al2O3 filler into a poly(vinyl chloride) (PVC) matrix. X-ray diffraction and energy-dispersive X-ray studies predicted a prominent growth of metallic Cu crystallites onto Al2O3 with an increased average size and variation in elemental composition, respectively, when compared to pristine Al2O3. Morphological behaviour via scanning electron microscopy also envisioned uniform Cu coating onto Al2O3 and a homogeneous dispersion throughout the polymer matrix. When incorporated into PVC, electrical conductivity analysis highlighted a distinct variation in composite phases from insulating (7.14 x 10(-16) S cm(-1)) to semiconducting behaviour (8.33 x 10(-5) S cm(-1)) as a function of Cu-Al(2)O(3 )filler. Mechanical behaviour (tensile strength, Young's modulus and elongation at break) and thermal properties of the prepared composites also indicated a substantial improvement in material strength with Cu-Al2O3 incorporation. The enhanced electrical conductivity along with improved thermomechanical status with significant filler-matrix interaction permits the potential usage of such novel composites in a range of state-of-the-art semiconducting electronic devices. (C) 2018 Society of Chemical Industry
引用
收藏
页码:1203 / 1211
页数:9
相关论文
共 50 条
  • [21] Preparation of self-healing polyurethane/functionalized graphene nanocomposites as electro-conductive one part adhesives
    Nasr, Farzaneh Hashemi
    Barikani, Mehdi
    Salehirad, Mehdi
    RSC ADVANCES, 2018, 8 (54): : 31094 - 31105
  • [22] Preparation of self-healing polyurethane/functionalized graphene nanocomposites as electro-conductive one part adhesives
    Hashemi Nasr F.
    Barikani M.
    Salehirad M.
    Barikani, Mehdi (M.Barikani@ippi.ac.ir), 2018, Royal Society of Chemistry (08) : 31094 - 31105
  • [23] Hierarchical thermal-conductive polymer nanocomposites for thermal management
    Li, Zheng
    Tangudu, Jagadeesh
    Saviers, Kimberly
    Singh, Pratyush Kumar
    Islam, Abdullah
    Faghihi, Danial
    Ren, Shenqiang
    APPLIED MATERIALS TODAY, 2023, 33
  • [24] 1/3 Subharmonic Resonance of The Electro-conductive Beam in Thermal-Magneto-Elasticity Field
    Xi Xiao-yan
    Yang Zhi-an
    Li Gao-feng
    INTELLIGENT SYSTEM AND APPLIED MATERIAL, PTS 1 AND 2, 2012, 466-467 : 814 - 818
  • [25] Electrorheological particles composed of polymer core with controlled diameter and electro-conductive/nonconductive double layers shell
    Saito, T
    Anzai, H
    Kuroda, S
    Osawa, Z
    INTERNATIONAL JOURNAL OF MODERN PHYSICS B, 1999, 13 (14-16): : 1689 - 1696
  • [26] Rate dependence of electrical and mechanical properties of conductive polymer nanocomposites
    Foley, J. R.
    Stilson, C. L.
    Smith, K. K. G.
    McKinion, C. M.
    Chen, C.
    Ganguli, S.
    Roy, A. K.
    DYMAT 2015 - 11TH INTERNATIONAL CONFERENCE ON THE MECHANICAL AND PHYSICAL BEHAVIOUR OF MATERIALS UNDER DYNAMIC LOADING, 2015, 94
  • [27] Fabrication of Conductive Filaments for 3D-printing: Polymer Nanocomposites
    Horst, Jose Diogo
    De Andrade Junior, Pedro Paulo
    Duvoisin, Charles Adriano
    Vieira, Rogerio de Almeida
    BIOINTERFACE RESEARCH IN APPLIED CHEMISTRY, 2020, 10 (06): : 6577 - 6586
  • [28] Fabrication of stretchable and conductive polymer nanocomposites based on interconnected graphene aerogel
    Song, Bo
    He, Wanchen
    Wang, Xueqiao
    Zeng, Xiaoliang
    Cheng, Mengting
    Wu, Fan
    Moon, Kyoung-sik
    Wong, Ching-Ping
    COMPOSITES SCIENCE AND TECHNOLOGY, 2020, 200
  • [29] Thermally Conductive Polymer Nanocomposites for Thermal Management of Electronic Packaging
    Tavman, Ismail Hakki
    Evgin, Tuba
    2017 IEEE 23RD INTERNATIONAL SYMPOSIUM FOR DESIGN AND TECHNOLOGY IN ELECTRONIC PACKAGING (SIITME), 2017, : 64 - 67
  • [30] Proposal and verification of thermal-conductive model of polymer nanocomposites
    Dong, Mengjie
    Hou, Guanyi
    Zhang, Jichuan
    Liu, Li
    Liang, Gaoyong
    Hao, Xinmin
    Guo, Yafei
    Wang, Meihui
    COMPOSITES PART B-ENGINEERING, 2022, 242