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Carbon 47(3):922–925
75. Huang X et al (2012) Graphene-based composites. Chem Soc Rev 41(2):666–686
76. Zheng W, Lu X, Wong SC (2004) Electrical and mechanical properties of expanded graphitereinforced high-density polyethylene. J Appl Polym Sci 91(5):2781–2788
77. Lee WD, Im SS (2007) Thermomechanical properties and crystallization behavior of
layered double hydroxide/poly (ethylene terephthalate) nanocomposites prepared by in-situ
polymerization. J Polym Sci Part B: Polym Phys 45(1):28–40
78. Hsueh H-B, Chen C-Y (2003) Preparation and properties of LDHs/polyimide nanocomposites.
Polymer 44(4):1151–1161
79. Verdejo R et al (2011) Graphene filled polymer nanocomposites. J Mater Chem 21(10):3301–
3310
80. Wang J-Y et al (2011) Preparation and properties of graphene oxide/polyimide composite
films with low dielectric constant and ultrahigh strength via in situ polymerization. J Mater
Chem 21(35):13569–13575
81. Zhang S et al (2018) Enhanced tensile strength and initial modulus of poly (vinyl
alcohol)/graphene oxide composite fibers via blending poly (vinyl alcohol) with poly (vinyl
alcohol)-grafted graphene oxide. J Polym Res 25(3):65
82. Chen B et al (2008) A critical appraisal of polymer–clay nanocomposites. Chem Soc Rev
37(3):568–594
83. Song SH et al (2010) Physical and thermal properties of acid-graphite/styrene-butadienerubber nanocomposites. Korean J Chem Eng 27(4):1296–1300
84. Dasari A, Yu Z-Z, Mai Y-W (2009) Electrically conductive and super-tough polyamide-based
nanocomposites. Polymer 50(16):4112–4121
85. Wakabayashi K et al (2008) Polymer-graphite nanocomposites: effective dispersion and major
property enhancement via solid-state shear pulverization. Macromolecules 41(6):1905–1908
86. Tewatia A et al (2017) Characterization of melt-blended graphene–poly (ether ether ketone)
nanocomposite. Mater Sci Eng B 216:41–49
87. You F et al (2014) In situ thermal reduction of graphene oxide in a styrene–ethylene/butylene–
styrene triblock copolymer via melt blending. Polym Int 63(1):93–99
88. Pickering SU (2001) Cxcvi.—emulsions. J Chem Soc Trans 91(1907):2001–2021
89. Böker A et al (2007) Self-assembly of nanoparticles at interfaces. Soft Matter 3(10):1231–
1248
90. Wang D, Duan H, Möhwald H (2005) The water/oil interface: the emerging horizon for
self-assembly of nanoparticles. Soft Matter 1(6):412–416
91. San Miguel A et al (2010) Smart colloidosomes with a dissolution trigger. Soft Matter
6(14):3163–3166
92. Dinsmore A et al (2002) Colloidosomes: selectively permeable capsules composed of colloidal
particles. Science 298(5595):1006–1009
93. Gudarzi MM, Sharif F (2011) Self assembly of graphene oxide at the liquid–liquid interface:
a new route to the fabrication of graphene based composites. Soft Matter 7(7):3432–3440
94. Read E et al (2004) Effect of varying the oil phase on the behavior of pH-responsive latex-based
emulsifiers: demulsification versus transitional phase inversion. Langmuir 20(18):7422–7429
95. Xie P et al (2013) Pickering emulsion polymerization of graphene oxide-stabilized styrene.
Colloid Polym Sci 291(7):1631–1639
96. Kumar A, Nanda D (2019) Methods and fabrication techniques of superhydrophobic surfaces.
In: Superhydrophobic polymer coatings. Elsevier. pp 43–75
97. Senez V, Thomy V, Dufour R (2014) Nanotechnologies for synthetic super non-wetting
surfaces. nanotechnologies for synthetic super non-wetting surfaces, pp 1–12
98. Yilbas BS, Al-Sharafi A, Ali H (2019) Self-cleaning of surfaces and water droplet mobility.
Elsevier
99. Lue SJ et al (2015) Novel bilayer well-aligned Nafion/graphene oxide composite membranes
prepared using spin coating method for direct liquid fuel cells. J Membr Sci 493:212–223
S. Pakdel et al.
74. Liang J et al (2009) Electromagnetic interference shielding of graphene/epoxy composites.
Carbon 47(3):922–925
75. Huang X et al (2012) Graphene-based composites. Chem Soc Rev 41(2):666–686
76. Zheng W, Lu X, Wong SC (2004) Electrical and mechanical properties of expanded graphitereinforced high-density polyethylene. J Appl Polym Sci 91(5):2781–2788
77. Lee WD, Im SS (2007) Thermomechanical properties and crystallization behavior of
layered double hydroxide/poly (ethylene terephthalate) nanocomposites prepared by in-situ
polymerization. J Polym Sci Part B: Polym Phys 45(1):28–40
78. Hsueh H-B, Chen C-Y (2003) Preparation and properties of LDHs/polyimide nanocomposites.
Polymer 44(4):1151–1161
79. Verdejo R et al (2011) Graphene filled polymer nanocomposites. J Mater Chem 21(10):3301–
3310
80. Wang J-Y et al (2011) Preparation and properties of graphene oxide/polyimide composite
films with low dielectric constant and ultrahigh strength via in situ polymerization. J Mater
Chem 21(35):13569–13575
81. Zhang S et al (2018) Enhanced tensile strength and initial modulus of poly (vinyl
alcohol)/graphene oxide composite fibers via blending poly (vinyl alcohol) with poly (vinyl
alcohol)-grafted graphene oxide. J Polym Res 25(3):65
82. Chen B et al (2008) A critical appraisal of polymer–clay nanocomposites. Chem Soc Rev
37(3):568–594
83. Song SH et al (2010) Physical and thermal properties of acid-graphite/styrene-butadienerubber nanocomposites. Korean J Chem Eng 27(4):1296–1300
84. Dasari A, Yu Z-Z, Mai Y-W (2009) Electrically conductive and super-tough polyamide-based
nanocomposites. Polymer 50(16):4112–4121
85. Wakabayashi K et al (2008) Polymer-graphite nanocomposites: effective dispersion and major
property enhancement via solid-state shear pulverization. Macromolecules 41(6):1905–1908
86. Tewatia A et al (2017) Characterization of melt-blended graphene–poly (ether ether ketone)
nanocomposite. Mater Sci Eng B 216:41–49
87. You F et al (2014) In situ thermal reduction of graphene oxide in a styrene–ethylene/butylene–
styrene triblock copolymer via melt blending. Polym Int 63(1):93–99
88. Pickering SU (2001) Cxcvi.—emulsions. J Chem Soc Trans 91(1907):2001–2021
89. Böker A et al (2007) Self-assembly of nanoparticles at interfaces. Soft Matter 3(10):1231–
1248
90. Wang D, Duan H, Möhwald H (2005) The water/oil interface: the emerging horizon for
self-assembly of nanoparticles. Soft Matter 1(6):412–416
91. San Miguel A et al (2010) Smart colloidosomes with a dissolution trigger. Soft Matter
6(14):3163–3166
92. Dinsmore A et al (2002) Colloidosomes: selectively permeable capsules composed of colloidal
particles. Science 298(5595):1006–1009
93. Gudarzi MM, Sharif F (2011) Self assembly of graphene oxide at the liquid–liquid interface:
a new route to the fabrication of graphene based composites. Soft Matter 7(7):3432–3440
94. Read E et al (2004) Effect of varying the oil phase on the behavior of pH-responsive latex-based
emulsifiers: demulsification versus transitional phase inversion. Langmuir 20(18):7422–7429
95. Xie P et al (2013) Pickering emulsion polymerization of graphene oxide-stabilized styrene.
Colloid Polym Sci 291(7):1631–1639
96. Kumar A, Nanda D (2019) Methods and fabrication techniques of superhydrophobic surfaces.
In: Superhydrophobic polymer coatings. Elsevier. pp 43–75
97. Senez V, Thomy V, Dufour R (2014) Nanotechnologies for synthetic super non-wetting
surfaces. nanotechnologies for synthetic super non-wetting surfaces, pp 1–12
98. Yilbas BS, Al-Sharafi A, Ali H (2019) Self-cleaning of surfaces and water droplet mobility.
Elsevier
99. Lue SJ et al (2015) Novel bilayer well-aligned Nafion/graphene oxide composite membranes
prepared using spin coating method for direct liquid fuel cells. J Membr Sci 493:212–223
