[1] G. Heinrich, M. Klüppel, T.A. Vilgis, Reinforcement of elastomers, Curr. Opin. Solid State Mater. Sci. 6(3) (2002) 195-203. [2] H. Ren, Y.X. Qu, S.H. Zhao, Reinforcement of styrene-butadiene rubber with silica modified by Silane coupling agents:Experimental and theoretical chemistry study, Chin. J. Chem. Eng. 14(1) (2006) 93-98. [3] Z. Qian, Z. Peng, Reinforcing styrene-butadiene rubber composites by constructing multiple interaction between rubber and silica, Polym. Compos. 40(5) (2018) 1740-1747. [4] A.M. Salvi, R. Pucciariello, M.R. Guascito, et al., Characterization of the interface in rubber/silica composite materials, Surf. Interf. Anal. 33(10-11) (2010) 850-861. [5] A.K. Geim, Graphene:status and prospects, Science 324(5934) (2009) 1530-1534. [6] A.C. Ferrari, J.C. Meyer, V. Scardaci, et al., Raman spectrum of graphene and graphene layers, Phys. Rev. Lett. 97(18) (2006), 187401.. [7] C.S. Boland, U. Khan, C. Backes, et al., Sensitive, high-strain, high-rate bodily motion sensors based on graphene-rubber composites, ACS Nano 8(9) (2014) 8819-8830. [8] Z. Liu, W. Wang, X.J. Ju, et al., Graphene-based membranes for molecular and ionic separations in aqueous environments, Chin. J. Chem. Eng., 25(11) (2017) 1598-1605. [9] Y. Zhu, S. Murali, W. Cai, et al., Graphene and graphene oxide:synthesis, properties, and applications, Cheminform 22(35) (2010) 3906-3924. [10] William S. Hummers, R.E. Offeman, Preparation of graphitic oxide, Am. Chem. Soc. 208(6) (1958) 1334-1339. [11] B.P. Singh, B.K. Jena, S. Bhattacharjee, et al., Development of oxidation and corrosion resistance hydrophobic graphene oxide-polymer composite coating on copper, Surf. Coat. Technol. 232(232) (2013) 475-481. [12] G. Kaur, R. Adhikari, P. Cass, et al., Graphene/polyurethane composites:fabrication and evaluation of electrical conductivity, mechanical properties and cell viability, RSC Adv. 5(120) (2015) 98762-98772. [13] Y. Mao, S. Zhang, D. Zhang, et al., Enhancing graphene oxide reinforcing potential in composites by combined latex compounding and spray drying, Mater. Res. Express 1(2) (2014), 025009.. [14] B. Yin, J. Wang, H. Jia, et al., Enhanced mechanical properties and thermal conductivity of styrene-butadiene rubber reinforced with polyvinylpyrrolidonemodified graphene oxide, J. Mater. Sci. 51(12) (2016) 5724-5737. [15] E. Bourgeatlami, J. Faucheu, A. Noël, Latex routes to graphene-based nanocomposites, Polym. Chem. 6(30) (2015) 5323-5357. [16] X. Wang, M. Tang, J. Wu, et al., Multifunctional properties of graphene/rubber composites fabricated by a modified latex compounding method, Compos. Sci. Technol. 99(4) (2014) 67-74. [17] B. Wang, X. Gong, J. Li, et al., Double equilibrium melting temperatures and zero growth temperature of PVDF in PVDF/graphene composites, J. Polym. Res. 22(12) (2015) 244. [18] E. Lago, P.S. Toth, G. Pugliese, et al., Solution blending preparation of polycarbonate/graphene composite:boosting the mechanical and electrical properties, RSC Adv. 6(100) (2016). [19] X. Zeng, J. Yang, W. Yuan, Preparation of a poly(methyl methacrylate)-reduced graphene oxide composite with enhanced properties by a solution blending method, Eur. Polym. J. 48(10) (2012) 1674-1682. [20] J.J. Chen, Y. Li, X.M. Zheng, et al., Enhancement in electroactive crystalline phase and dielectric performance of novel PEG-graphene/PVDF composites, Appl. Surf. Sci. 448(2018) 320-330. [21] H. Li, J. Miao, X. Wu, et al., In-situ "molecular welding" preparation of graphene/polyimide hybrid film with superior thermal conductivity and flexibility, J. Polym. Sci. B Polym. Phys. 56(17) (2018) 1215-1223. [22] Z. Xu, C. Gao, In-situ polymerization approach to graphene-reinforced nylon-6 composites, Macromolecules 43(16) (2010) 6716-6723. [23] Y.F. Huang, C.W. Lin, Facile synthesis and morphology control of graphene oxide/polyaniline nanocomposites via in-situ polymerization process, Polymer 53(13) (2012) 2574-2582. [24] P. Fabbri, E. Bassoli, S.B. Bon, et al., Preparation and characterization of poly (butylene terephthalate)/graphene composites by in-situ polymerization of cyclic butylene terephthalate, Polymer 53(4) (2012) 897-902. [25] Y. Mao, Shipeng Wen, Yulong Chen, et al., High-performance graphene oxide based rubber composites, Sci. Rep. 3(3) (2013) 2508. [26] X. Bai, C.Y. Wan, Y. Zhang, et al., Reinforcement of hydrogenated carboxylated nitrile-butadiene rubber with exfoliated graphene oxide, Carbon 49(5) (2011) 1608-1613. [27] Y. Zhan, J. Wu, H. Xia, et al., Dispersion and exfoliation of graphene in rubber by an ultrasonically-assisted latex mixing and in situ reduction process, Macromolec. Mater. Eng. 296(7) (2011) 590-602. [28] W. Xing, J. Wu, G. Huang, et al., Enhanced mechanical properties of graphene/natural rubber composites at low content, Polym. Int. 63(9) (2014) 1674-1681. |