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Original Articles

Functional graphene nanoplatelet reinforced epoxy resin and polystyrene-based block copolymer nanocomposite

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Pages 47-57 | Received 29 Jul 2016, Accepted 18 Oct 2016, Published online: 07 Nov 2016

References

  • Dian, L.Y. and Johan, M.R. (2015) Electrical conductivity and transport properties of gold decorated amorphous carbon Nanotubes/Epoxy composites. Full. Nanotub. Carb. Nanostruct., 23(2): 120–124.
  • Kausar, A. (2016) Estimation of Thermo-mechanical and fire resistance profile of epoxy coated polyurethane/fullerene composite films. Full. Nanotub. Carb. Nanostruct., 24(6): 391–399.
  • Novoselov, K. S., Geim, A. K., Morozov, S. V., Jiang, D., Zhang, Y., Dubonos, S. V., Grigorieva, IV, and Firsov, A. A. (2004) Electric field effect in atomically thin carbon films. Science, 306(5696): 666–669.
  • Ma, J., Guo, Q., Gao, H.L., and Qin, X. (2015) Synthesis of C60/Graphene composite as electrode in supercapacitors. Full. Nanotub. Carb. Nanostruct., 23(6):477–482.
  • Liu, C., Jin, E., He, S., Luo, S., and Lin, M. (2016) Molecular dynamics study on doping defected graphene by boron. Full. Nanotub. Carb. Nanostruct., 24(6): 363–370.
  • Kausar, A. and Ur Rahman, A. (2016) Effect of graphene nanoplatelet addition on properties of thermo-responsive shape memory polyurethane-based nanocomposite. Full. Nanotub. Carb. Nanostruct., 24(4): 235–242.
  • Mutlay, İ. and Tudoran, L.B. (2014) Percolation behavior of electrically conductive graphene nanoplatelets/polymer nanocomposites: Theory and experiment. Full. Nanotub. Carb. Nanostruct., 22(5): 413–433.
  • Wang, F., Drzal, L.T., Qin, Y., and Huang, Z. (2015) Mechanical properties and thermal conductivity of graphene nanoplatelet/epoxy composites. J. Mater. Sci., 50(3): 1082–1093.
  • Ma, P.C., Siddiqui, N.A., Marom, G., and Kim, J.K. (2010) Dispersion and functionalization of carbon nanotubes for polymer-based nanocomposites: a review. Compos. Part A: Appl. Sci. Manufact., 41(10): 1345–1367.
  • Cui, L.J., Wang, Y.B., Xiu, W.J., Wang, W.Y., Xu, L.H., Xu, X.B., Meng, Y., Li, L.Y., Gao, J., Chen, L.T., and Geng, H.Z. (2013) Effect of functionalization of multi-walled carbon nanotube on the curing behavior and mechanical property of multi-walled carbon nanotube/epoxy composites. Mater. Des., 49: 279–284.
  • Karthick, R., Brindha, M., Selvaraj, M., and Ramu, S. (2013) Stable colloidal dispersion of functionalized reduced graphene oxide in aqueous medium for transparent conductive film. J. Colloid Interface Sci., 406: 69–74.
  • Kausar, A., Rafique, I., Anwar, Z., and Muhammad, B. (2016) Perspectives of Epoxy/Graphene oxide composite: significant features and technical applications. Polym. Plast. Technol. Eng., 55(7): 704–722.
  • Yadav, S.K. and Cho, J.W. (2013) Functionalized graphene nanoplatelets for enhanced mechanical and thermal properties of polyurethane nanocomposites. Appl. Surf. Sci., 266: 360–367.
  • Yuan, B., Bao, C., Song, L., Hong, N., Liew, K.M., and Hu, Y. (2014) Preparation of functionalized graphene oxide/polypropylene nanocomposite with significantly improved thermal stability and studies on the crystallization behavior and mechanical properties. Chem. Eng. J., 237: 411–420.
  • Hu, Y., Shen, J., Li, N., Shi, M., Ma, H., Yan, B., Wang, W., Huang, W., and Ye, M. (2010) Amino-functionalization of graphene sheets and the fabrication of their nanocomposites. Polym. Compos., 31(12): 1987–1994.
  • Niyogi, S., Bekyarova, E., Itkis, M.E., McWilliams, J.L., Hamon, M.A., and Haddon, R.C. (2006) Solution properties of graphite and graphene. J. Am. Chem. Soc., 128(24): 7720–7721.
  • Byun, J. and Kim, D.S. (2010) Curing behavior and physical properties of epoxy nanocomposites comprising amine‐functionalized carbon nanofillers. Polym. Compos., 31(8): 1449–1456.
  • Bao, C., Guo, Y., Song, L., Kan, Y., Qian, X., and Hu, Y. (2011) In-situ preparation of functionalized graphene oxide/epoxy nanocomposites with effective reinforcements. J. Mater. Chem., 21(35): 13290–13298.
  • Seong, M. and Kim, D.S. (2015) Effects of facile amine-functionalization on the physical properties of epoxy/graphene nanoplatelets nanocomposites. J. Appl. Polym. Sci., 132(28): doi: 10.1002/app.42269.
  • Kango, S., Kalia, S., Celli, A., Njuguna, J., Habibi, Y., and Kumar, R. (2013) Surface modification of inorganic nanoparticles for development of organic–inorganic nanocomposites—a review. Prog. Polym. Sci., 38(8): 1232–1261.
  • Hdiao, M. C., Liao, S. H., Yen, M. Y., Liu, P. I., Pu, N. W., and Wang, C. A. (2010) Preparation of covalently functionalized graphene using residual oxygen-containing functional groups. ACS Appl. Mater. Interfaces, 2:3092.
  • Sawangphruk, M., Suksomboon, M., Kongsupornsak, K., Khuntilo, J., Srimuk, P., Sanguansak, Y., Klunbud, P., Suktha, P., and Chiochan, P. (2013) High-performance supercapacitors based on silver nanoparticle–polyaniline–graphene nanocomposites coated on flexible carbon fiber paper. J. Mater. Chem. A, 1(34): 9630–9636.
  • Whitesides, G.M. and Grzybowski, B. (2002) Self-assembly at all scales. Sci., 295: 2418–2421.
  • Adhikari, R., Henning, S., Lebek, W., Godehardt, R., Ilisch, S., and Michler, G.H. (2006) Structure and properties of nanocomposites based on SBS block copolymer and alumina. Macromol. Symp., 231(1): 116–124.
  • Spoljaric, S. and Shanks, R. A. (2012) Novel elastomer dye-functionalised POSS nanocomposites: enhanced colourimetric, thermomechanical and thermal properties. Express Polym. Lett., 6(5): 354–372.
  • Chatterjee, S., Wang, J.W., Kuo, W.S., Tai, N.H., Salzmann, C., Li, W.L., Hollertz, R., Nüesch, F.A., and Chu, B.T.T. (2012) Mechanical reinforcement and thermal conductivity in expanded graphene nanoplatelets reinforced epoxy composites. Chem. Phys. Lett., 531: 6–10.
  • Anwar, Z., Kausar, A., Rafique, I., and Muhammad, B. (2016) Advances in Epoxy/Graphene Nanoplatelet composite with enhanced physical properties: A review. Polym. Plast. Technol. Eng., 55(6): 643–662.
  • Monti, M., Rallini, M., Puglia, D., Peponi, L., Torre, L., and Kenny, J.M. (2013) Morphology and electrical properties of graphene–epoxy nanocomposites obtained by different solvent assisted processing methods. Compos. Part A: Appl. Sci. Manufact., 46: 166–172.
  • Qiu, S.L., Wang, C.S., Wang, Y.T., Liu, C.G., Chen, X.Y., Xie, H.F., Huang, Y.A., and Cheng, R.S. (2011) Effects of graphene oxides on the cure behaviors of a tetrafunctional epoxy resin. Express Polym. Lett., 5(9): 809–818.
  • Hameed, N., Guo, Q., Hanley, T., and Mai, Y.W. (2010) Hydrogen bonding interactions, crystallization, and surface hydrophobicity in nanostructured epoxy/block copolymer blends. J. Polym. Sci. Part B: Polym. Phys., 48(7): 790–800.
  • Moriche, R., Prolongo, S.G., Sánchez, M., Jiménez-Suárez, A., Sayagués, M.J., and Ureña, A. (2015) Morphological changes on graphene nanoplatelets induced during dispersion into an epoxy resin by different methods. Compos. Part B: Eng., 72: 199–205.
  • Liang, J., Wang, Y., Huang, Y., Ma, Y., Liu, Z., Cai, J., Zhang, C., Gao, H., and Chen, Y. (2009) Electromagnetic interference shielding of graphene/epoxy composites. Carbon, 47(3): 922–925.
  • Wang, Z., Luo, J., and Zhao, G.L. (2014) Dielectric and microwave attenuation properties of graphene nanoplatelet–epoxy composites. AIP Adv., 4(1): 017139.

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