17. Moniruzzaman M, Winey KI (2006) Polymer nanocomposites containing carbon nanotubes.
Macromolecules 39:5194–5205
18. Zhu J, Wei S, Ryu J, Budhathoki M, Liang G, Guo Z (2010) In situ stabilized carbon
nanofiber (CNF) reinforced epoxy nanocomposites. J Mater Chem 20:4937–4948
19. Laraba-Abbes F, Ienny P, Piques R (2003) A new ‘Tailor-made’ methodology for the
mechanical behaviour analysis of rubber-like materials: II. Application to the hyperelastic
behaviour characterization of a carbon-black filled natural rubber vulcanizate. Polymer
44:821–840
20. Tian M, Su LL, Cai WT, Win S, Chen Q, Fong H, Zhang LQ (2011) Mechanical properties
and reinforcement mechanisms of hydrogenated acrylonitrile butadiene rubber composites
containing fibrillar silicate nanofibers and short aramid microfibers. J Appl Polym Sci
120:1439–1447
21. Murty VM, De SK (1984) Short-fiber-reinforced styrene-butadiene rubber composites. J
Appl Polym Sci 29:1355–1368
22. Wong EW, Sheehan PE, Lieber CM (1997) Nanobeam mechanics: elasticity strength and
toughness of nanorods and nanotubes. Science 277:1971–1975
23. Gogotsi Y (2010) High-temperature rubber made from carbon nanotubes. Science
330:1332–1333
24. Shrivastava NK, Suin S, Maiti S, Khatua BB (2013) Ultralow electrical percolation threshold
in poly(styrene-co-acrylonitrile)/carbon nanotube nanocomposites. Ind Eng Chem Res
52:2858–2868
25. Dyke CA, Tour JM (2003) Solvent-free functionalization of carbon nanotubes. J Am Chem
Soc 125:1156–1157
26. Saengsuwan S, Saikrasun S (2012) Thermal stability of styrene-(ethylene butylene)-styrenebased elastomer composites modified by liquid crystalline polymer, clay and carbon nanotube. J Therm Anal Calorim 110:1395–1406
27. Zha JW, Shehzad K, Li WK, Dang ZM (2013) The effect of aspect ratio on the piezoresistive
behavior of the multiwalled carbon nanotubes/thermoplastic elastomer nanocomposites. J
Appl Phys 113:014102
28. Heinrich G, Kluppel M, Vilgis TA (2002) Reinforcement of elastomers. Curr Opin Solid
State Mater Sci 6:195–203
29. Falco AD, Marzocca AJ, Corcuera MA, Eceiza A, Mondragon I, Rubiolo H, Goyanes S
(2009) Accelerator adsorption onto carbon nanotubes surface affects the vulcanization
process of styrene-butadiene rubber composites. J Appl Polym Sci 113:2851–2857
30. Singh NK, Singh SK, Dash D, Gonugunta P, Misra M, Maiti P (2013) CNT Induced β-phase
in polylactide: unique crystallization, biodegradation, and biocompatibility. J Phys Chem C
117:10163–10174
31. Iijima S (1991) Helical microtubules of graphitic carbon. Nature 354:56–58
32. Kim HH, Kim HJ (2006) Preparation of carbon nanotubes by DC are discharge process under
reduced pressure in an air atmosphere. Mater Sci Eng B 133:241–244
33. Che G, Lakshmi BB, Martin CR, Fisher ER (1998) Chemical vapor deposition based
synthesis of carbon nanotubes and nanofibers using a template method. Chem Mater
10:260–267
34. Hornbostel B, Haluska M, Cech J, Dettlaff U, Roth S (2006) Arc discharge and laser ablation
synthesis of single-walled carbon nanotubes. NATO Science Series II: Mathematics. Phys
Chem 222:1–18
35. Dateo CE, Gokcen T, Meyyappan M (2002) Modeling of the HiPco process for carbon
nanotube production. 1. Chemical kinetics. J Nanosci Nanotechnol 2:523–34
36. Zajickova L, Jasek O, Elias M, Synek P, Lazar L, Schneeweiss O, Hanzlikova R (2010)
Synthesis of carbon nanotubes by plasma-enhanced chemical vapor deposition in an
atmospheric-pressure microwave torch. Pure Appl Chem 82:1259–1272
37. Tasis D, Tagmetarchis N, Bianco A, Prato M (2006) Chemistry of carbon nanotubes. Chem
Rev 106:1105–1136
Nonlinear Viscoelasticity of One Dimensional Filler Reinforced Elastomer. . .
37
Macromolecules 39:5194–5205
18. Zhu J, Wei S, Ryu J, Budhathoki M, Liang G, Guo Z (2010) In situ stabilized carbon
nanofiber (CNF) reinforced epoxy nanocomposites. J Mater Chem 20:4937–4948
19. Laraba-Abbes F, Ienny P, Piques R (2003) A new ‘Tailor-made’ methodology for the
mechanical behaviour analysis of rubber-like materials: II. Application to the hyperelastic
behaviour characterization of a carbon-black filled natural rubber vulcanizate. Polymer
44:821–840
20. Tian M, Su LL, Cai WT, Win S, Chen Q, Fong H, Zhang LQ (2011) Mechanical properties
and reinforcement mechanisms of hydrogenated acrylonitrile butadiene rubber composites
containing fibrillar silicate nanofibers and short aramid microfibers. J Appl Polym Sci
120:1439–1447
21. Murty VM, De SK (1984) Short-fiber-reinforced styrene-butadiene rubber composites. J
Appl Polym Sci 29:1355–1368
22. Wong EW, Sheehan PE, Lieber CM (1997) Nanobeam mechanics: elasticity strength and
toughness of nanorods and nanotubes. Science 277:1971–1975
23. Gogotsi Y (2010) High-temperature rubber made from carbon nanotubes. Science
330:1332–1333
24. Shrivastava NK, Suin S, Maiti S, Khatua BB (2013) Ultralow electrical percolation threshold
in poly(styrene-co-acrylonitrile)/carbon nanotube nanocomposites. Ind Eng Chem Res
52:2858–2868
25. Dyke CA, Tour JM (2003) Solvent-free functionalization of carbon nanotubes. J Am Chem
Soc 125:1156–1157
26. Saengsuwan S, Saikrasun S (2012) Thermal stability of styrene-(ethylene butylene)-styrenebased elastomer composites modified by liquid crystalline polymer, clay and carbon nanotube. J Therm Anal Calorim 110:1395–1406
27. Zha JW, Shehzad K, Li WK, Dang ZM (2013) The effect of aspect ratio on the piezoresistive
behavior of the multiwalled carbon nanotubes/thermoplastic elastomer nanocomposites. J
Appl Phys 113:014102
28. Heinrich G, Kluppel M, Vilgis TA (2002) Reinforcement of elastomers. Curr Opin Solid
State Mater Sci 6:195–203
29. Falco AD, Marzocca AJ, Corcuera MA, Eceiza A, Mondragon I, Rubiolo H, Goyanes S
(2009) Accelerator adsorption onto carbon nanotubes surface affects the vulcanization
process of styrene-butadiene rubber composites. J Appl Polym Sci 113:2851–2857
30. Singh NK, Singh SK, Dash D, Gonugunta P, Misra M, Maiti P (2013) CNT Induced β-phase
in polylactide: unique crystallization, biodegradation, and biocompatibility. J Phys Chem C
117:10163–10174
31. Iijima S (1991) Helical microtubules of graphitic carbon. Nature 354:56–58
32. Kim HH, Kim HJ (2006) Preparation of carbon nanotubes by DC are discharge process under
reduced pressure in an air atmosphere. Mater Sci Eng B 133:241–244
33. Che G, Lakshmi BB, Martin CR, Fisher ER (1998) Chemical vapor deposition based
synthesis of carbon nanotubes and nanofibers using a template method. Chem Mater
10:260–267
34. Hornbostel B, Haluska M, Cech J, Dettlaff U, Roth S (2006) Arc discharge and laser ablation
synthesis of single-walled carbon nanotubes. NATO Science Series II: Mathematics. Phys
Chem 222:1–18
35. Dateo CE, Gokcen T, Meyyappan M (2002) Modeling of the HiPco process for carbon
nanotube production. 1. Chemical kinetics. J Nanosci Nanotechnol 2:523–34
36. Zajickova L, Jasek O, Elias M, Synek P, Lazar L, Schneeweiss O, Hanzlikova R (2010)
Synthesis of carbon nanotubes by plasma-enhanced chemical vapor deposition in an
atmospheric-pressure microwave torch. Pure Appl Chem 82:1259–1272
37. Tasis D, Tagmetarchis N, Bianco A, Prato M (2006) Chemistry of carbon nanotubes. Chem
Rev 106:1105–1136
Nonlinear Viscoelasticity of One Dimensional Filler Reinforced Elastomer. . .
37
