[1]
H. Ku, F. Cardona, N. Pattarachaiyakoop, M. Trada, Fracture toughness of phenol formaldehyde composites reinforced with E-spheres, Journal of Composite Materials. 43 (2009) 741-754.
DOI: 10.1177/0021998308101296
Google Scholar
[2]
J.K. Duan, C. Kim, Y. Zheng, et al., Functionalizing nano-AlN by silane modification for preparation of covalent-integrated Epoxy/poly (ether imide) nanocomposites, Journal of Applied Polymer Science. 115 (2009) 2734 -2746.
DOI: 10.1002/app.29962
Google Scholar
[3]
C.K. Riew, A.J. Kinloch, Toughened plastics I: science and engineering, Washingtion DC. ACS, (1993).
Google Scholar
[4]
P. Pustkova, J.M. Hutchinson, F. Roma´n, S. Montserrat, Homopolymerization effects in polymer layered silicate nanocomposites based upon epoxy resin: implications for exfoliation, Journal of Applied Polymer Science. 114 (2009)1040-1047.
DOI: 10.1002/app.30697
Google Scholar
[5]
J.K. Duan, S. x. Shao, L. Jiang, et al., Nano-attapulgite Functionalization by Silane Modification for Preparation of Covalently-integrated Epoxy/TMPTMA Nanocomposites, Iranian Polymer Journal. 20 (2011) 855-872.
Google Scholar
[6]
X. Wang, D.Y.S. Lou, Int J Engine Res. 27 (2003)377-381.
Google Scholar
[7]
A.J. Mackinnon, S.D. Jenkins, P.T. McGral, R.A. Petrick, Macromolecules. 25 (1992) 3492-3495.
Google Scholar
[8]
M.D.M. Salinas-Ruiz, A.A. Skordos, I.K. Partridge, Rubber-toughened epoxy loaded with carbon nanotubes: structure-property relationships, Journal of Materials Science. 45 (2010) 2633-2639.
DOI: 10.1007/s10853-010-4241-x
Google Scholar
[9]
J.K. Duan, C. Kim, Y. Zheng, et al., Effect of external electric field on the microstructures and properties of carbon nanotubes/thermosets nanocomposites, Polymer Composites. 31 (2010) 347-358.
DOI: 10.1002/pc.20812
Google Scholar
[10]
W.F. Bradley. The structural scheme of attapulgite. American Mineralogist. 24 (1940) 405–410.
Google Scholar
[11]
W.F. Bradley, The structural scheme of attapulgite, American Mineralogist. 24 (1940) 405–410.
Google Scholar
[12]
M. Tian, C.D. Qu, Y.X. Feng, et al., Structure and properties of fibrillar silicate/SBR composites by direct blend process, Journal of materials science. 38 (2003) 4917-4924.
DOI: 10.1023/b:jmsc.0000004414.27574.93
Google Scholar
[13]
L. Zhao, G. z. Zhan, Y.F. Yu, et al., Influence of attapulgites on cure-reaction-induced phase separation in epoxy/poly(ether sulfone) blends, Journal of Applied Polymer Science. 108 (2008) 953-959.
DOI: 10.1002/app.27416
Google Scholar
[14]
K. Hedicke-Hochstotter G.T. Lim, V. Altstadt, Novel polyamide nanocomposites based on silicate nanotubes of the mineral halloysite, Composites Science and Technology. 69 (2009) 330-334.
DOI: 10.1016/j.compscitech.2008.10.011
Google Scholar
[15]
B.K. Kuila, A.K. Nandi. Poly(3-dodecyl thiophene)-organically modified montmorillonite clay nanocomposites: Influence of chain regioregularity and preparation condition on physical, mechanical, optical, and conductivity properties, Journal of Applied Polymer Science. 111 (2009).
DOI: 10.1002/app.29074
Google Scholar
[16]
K. Kowalczyk, T. Spychaj, Protective epoxy dispersion coating materials modified a posteriori with organophilized montmorillonites, Surface & Coatings Technology. 204 (2009) 635-641.
DOI: 10.1016/j.surfcoat.2009.08.046
Google Scholar
[17]
J.K. Duan, C. Kim, P.K. Jiang, On-line monitoring of cycloaliphatic epoxy/acrylate interpenetrating polymer networks formation and characterization of their mechanical properties, Journal of Polymer Research. 16 (2009) 45-54.
DOI: 10.1007/s10965-008-9201-7
Google Scholar
[18]
A.S. Luyt, J.A. Molefi, H. Krump, Thermal, mechanical and electric properties of copper powder filled low-density and linear low-density polyethylene composites, Polymer Degradation and Stablity. 91 (2006) 1629-1636.
DOI: 10.1016/j.polymdegradstab.2005.09.014
Google Scholar
[19]
O. Becker, R. Varley, G. Simon, Morphology, thermal relaxations and mechanical properties of layered silicate nanocomposites based upon high functionality epoxy resins, Polymer. 43 (2002) 4365-4373.
DOI: 10.1016/s0032-3861(02)00269-0
Google Scholar