High-performance nanotube-reinforced plastics: Understanding the mechanism of strength increase

被引:512
作者
Coleman, JN [1 ]
Cadek, M
Blake, R
Nicolosi, V
Ryan, KP
Belton, C
Fonseca, A
Nagy, JB
Gun'ko, YK
Blau, WJ
机构
[1] Trinity Coll Dublin, Dept Phys, Mat Ireland Polymer Res Ctr, Dublin 2, Ireland
[2] Trinity Coll Dublin, Dept Chem, Dublin 2, Ireland
[3] Fac Univ Notre Dame Paix, Lab Resonance Magnet Nucl, B-5000 Namur, Belgium
关键词
D O I
10.1002/adfm.200305200
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Polymer-multiwalled carbon nanotube composite films were fabricated using two types of polymer matrices, namely poly(vinyl alcohol), (PVA) and chlorinated polypropylene. In the first case, the PVA was observed to form a crystalline coating around the nanotubes, maximising interfacial stress transfer. In the second case the interface was engineered by covalently attaching chlorinated polypropylene chains to the nanotubes, again resulting in large stress transfer. Increases in Young's modulus, tensile strength, and toughness of x 3.7, x 4.3, and x 1.7, respectively were observed for the PVA-based materials at less than I wt.-% nanotubes. Similarily for the polypropylene-based composites, increases in Young's modulus, tensile strength and toughness of x 3.1, x 3.9, and x 4.4, respectively, were observed at equivalent nanotube loading levels. In addition, a model to describe composite strength was derived. This model shows that the tensile strength increases in proportion to the thickness of the interface region. This suggests that composite strength can be optimized by maximising the thickness of the crystalline coating or the thickness of the interfacial volume partially occupied by functional groups.
引用
收藏
页码:791 / 798
页数:8
相关论文
共 25 条
  • [11] FORRO L, COMMUNICATION
  • [12] HELICAL MICROTUBULES OF GRAPHITIC CARBON
    IIJIMA, S
    [J]. NATURE, 1991, 354 (6348) : 56 - 58
  • [13] Kelly A., 1966, STRONG SOLIDS
  • [14] Experimental observation of scaling laws for alternating current and direct current conductivity in polymer-carbon nanotube composite thin films
    Kilbride, BE
    Coleman, JN
    Fraysse, J
    Fournet, P
    Cadek, M
    Drury, A
    Hutzler, S
    Roth, S
    Blau, WJ
    [J]. JOURNAL OF APPLIED PHYSICS, 2002, 92 (07) : 4024 - 4030
  • [15] Krenchel H., 1964, Fibre Reinforcement
  • [16] Transmission electron microscopy observations of fracture of single-wall carbon nanotubes under axial tension
    Lourie, O
    Wagner, HD
    [J]. APPLIED PHYSICS LETTERS, 1998, 73 (24) : 3527 - 3529
  • [17] Carbon-nanofibre-reinforced poly(ether ether ketone) fibres
    Sandler, J
    Windle, AH
    Werner, P
    Altstädt, V
    Es, MV
    Shaffer, MSP
    [J]. JOURNAL OF MATERIALS SCIENCE, 2003, 38 (10) : 2135 - 2141
  • [18] Ultra-low electrical percolation threshold in carbon-nanotube-epoxy composites
    Sandler, JKW
    Kirk, JE
    Kinloch, IA
    Shaffer, MSP
    Windle, AH
    [J]. POLYMER, 2003, 44 (19) : 5893 - 5899
  • [19] SANDLER JKW, UNPUB
  • [20] Shaffer MSP, 1999, ADV MATER, V11, P937, DOI 10.1002/(SICI)1521-4095(199908)11:11<937::AID-ADMA937>3.0.CO