392
L. L. Vovchenko et al.
13. Bilotti E, Zhang H, Deng H, Zhang R, Fu Q, Peijs T (2013) Controlling the dynamic
percolation of carbon nanotube based conductive polymer composites by addition of secondary
nanofillers: the effect on electrical conductivity and tuneable sensing behaviour. Compos Sci
Technol 74:85–90
14. Sumfleth J, Adroher XC, Shulte K (2009) Synergistic effects in network formation and
electrical properties of hybrid epoxy nanocomposites containing multi-wall carbon nanotubes
and carbon black. J Mater Sci 44:3241–3247
15. Kranauskait˙ e I, Banys J, Talik E, Kuznetsov V, Nunn N, Shenderova O (2015) Electric/dielectric properties of composites filled wiyh onion-like carbon and multiwalled carbon
nanotubes. Lith J Phys 55(2):126–131
16. Raza MA, Westwood A, Stirling C (2012) Carbon black/graphite nanoplatelet/rubbery epoxy
hybrid composites for thermal interface applications. J Mater Sci 47:1059–1070
17. Agnelli S, Cipolletti V, Musto S, Coombs M, Conzatti L, Pandini S, Riccò T, Galimberti M
(2014) Interactive effects between carbon allotrope fillers on the mechanical reinforcement of
polyisoprene based nanocomposites. Express Polym Lett 8:436–449
18. Patsidis AC, Kalaitzidou K, Anastassopoulos DL, Vradis AA, Psarras GC (2014) Graphite
nanoplatelets and/or barium titanate/polymer nanocomposites: fabrication, thermomechanical
properties, dielectric response and energy storage. J Chin Adv Mater Soc 2:207–221
19. Lazarenko O, Vovchenko L, Matzui L, Perets Y (2011) The electronic transport properties of
the composites with nanosized carbon fillers. Mol Cryst Liq Cryst 536:72/[304]–80/[312]
20. Elimat ZM (2015) AC-impedance and dielectric properties of hybrid polymer composites. J
Compos Mater 49(1):3–15
21. Qiang Z, Liang G, Aijuan G, Li Y (2014) The dielectric behavior and origin of high-k composites with very low percolation threshold based on unique multi-branched polyaniline/carbon
nanotube hybrids and epoxy resin. Compos Part A 64:1–10
22. Perets Y, Aleksandrovych L, Melnychenko M, Lazarenko O, Vovchenko L, Matzui L (2017)
The electrical properties of hybrid composites based on multiwall carbon nanotubes with
graphite nanoplatelets. Nanoscale Res Lett 12(406):406
23. Chang J, Liang G, Gu A, Cai S, Yuan L (2012) The production of carbon nanotube/epoxy
composites with a very high dielectric constant and low dielectric loss by microwave curing.
Carbon 50:689–698
24. Samir Z, Merabet YEL, Grasa MPF, Soreto Teixera S, Achour ME, Costa LC (2016) Complex
impedance study of carbon nanotubes/polyester polymer composites. In: Dielectric Materials
and Applications: ISyDMA’2016 Materials Research Forum LLC Materials Research Proceedings 1:13–16. https://doi.org/10.21741/2474-395X/1/4
25. Banerjee S, Kumar A (2012) Relaxation and charge transport phenomena in polyaniline
nanofibers: swift heavy ion irradiation effects. J Non-Cryst Solids 358:2990–2998
26. Prateek, Thakur VK, Gupta RK (2016) Recent progress on ferroelectric polymer-based
nanocomposites for high energy density capacitors: synthesis, dielectric properties, and future
aspects. Chem Rev 116:4260–4317
27. Wang F, Wang J-W, Li S-q, Xiao J (2009) Dielectric properties of epoxy composites with
modified multiwalled carbon nanotubes. Polym Bull 63:101–110
28. Yuan J-K, Yao S-H, Dang Z-M, Sylvestre A, Genestoux M, Bai J (2011) Giant dielectric permittivity Nanocomposites: realizing true potential of pristine carbon nanotubes in
polyvinylidene fluoride matrix through an enhanced interfacial interaction. J Phys Chem C
115:5515–5552
29. Mathieu B, Anthony C, Arnaud A, Lionel F (2015) CNT aggregation mechanisms probed by
electrical and dielectric measurements. J Mater Chem C 3:5769
30. Shi S-L, Liang J (2006) Effect of multiwall carbon nanotubes on electrical and dielectric
properties of yttria-stabilized zirconia ceramic. J Am Ceram Soc 89:3533–3535
31. Lorenz H, Fritzsche J, Das A, Stueckelhuber K, Jurk R, Heinrich G, Klueppel M (2009)
Advanced elastomer nano-composites based on CNT-hybrid filler systems. Compos Sci
Technol 69:2135–2143
L. L. Vovchenko et al.
13. Bilotti E, Zhang H, Deng H, Zhang R, Fu Q, Peijs T (2013) Controlling the dynamic
percolation of carbon nanotube based conductive polymer composites by addition of secondary
nanofillers: the effect on electrical conductivity and tuneable sensing behaviour. Compos Sci
Technol 74:85–90
14. Sumfleth J, Adroher XC, Shulte K (2009) Synergistic effects in network formation and
electrical properties of hybrid epoxy nanocomposites containing multi-wall carbon nanotubes
and carbon black. J Mater Sci 44:3241–3247
15. Kranauskait˙ e I, Banys J, Talik E, Kuznetsov V, Nunn N, Shenderova O (2015) Electric/dielectric properties of composites filled wiyh onion-like carbon and multiwalled carbon
nanotubes. Lith J Phys 55(2):126–131
16. Raza MA, Westwood A, Stirling C (2012) Carbon black/graphite nanoplatelet/rubbery epoxy
hybrid composites for thermal interface applications. J Mater Sci 47:1059–1070
17. Agnelli S, Cipolletti V, Musto S, Coombs M, Conzatti L, Pandini S, Riccò T, Galimberti M
(2014) Interactive effects between carbon allotrope fillers on the mechanical reinforcement of
polyisoprene based nanocomposites. Express Polym Lett 8:436–449
18. Patsidis AC, Kalaitzidou K, Anastassopoulos DL, Vradis AA, Psarras GC (2014) Graphite
nanoplatelets and/or barium titanate/polymer nanocomposites: fabrication, thermomechanical
properties, dielectric response and energy storage. J Chin Adv Mater Soc 2:207–221
19. Lazarenko O, Vovchenko L, Matzui L, Perets Y (2011) The electronic transport properties of
the composites with nanosized carbon fillers. Mol Cryst Liq Cryst 536:72/[304]–80/[312]
20. Elimat ZM (2015) AC-impedance and dielectric properties of hybrid polymer composites. J
Compos Mater 49(1):3–15
21. Qiang Z, Liang G, Aijuan G, Li Y (2014) The dielectric behavior and origin of high-k composites with very low percolation threshold based on unique multi-branched polyaniline/carbon
nanotube hybrids and epoxy resin. Compos Part A 64:1–10
22. Perets Y, Aleksandrovych L, Melnychenko M, Lazarenko O, Vovchenko L, Matzui L (2017)
The electrical properties of hybrid composites based on multiwall carbon nanotubes with
graphite nanoplatelets. Nanoscale Res Lett 12(406):406
23. Chang J, Liang G, Gu A, Cai S, Yuan L (2012) The production of carbon nanotube/epoxy
composites with a very high dielectric constant and low dielectric loss by microwave curing.
Carbon 50:689–698
24. Samir Z, Merabet YEL, Grasa MPF, Soreto Teixera S, Achour ME, Costa LC (2016) Complex
impedance study of carbon nanotubes/polyester polymer composites. In: Dielectric Materials
and Applications: ISyDMA’2016 Materials Research Forum LLC Materials Research Proceedings 1:13–16. https://doi.org/10.21741/2474-395X/1/4
25. Banerjee S, Kumar A (2012) Relaxation and charge transport phenomena in polyaniline
nanofibers: swift heavy ion irradiation effects. J Non-Cryst Solids 358:2990–2998
26. Prateek, Thakur VK, Gupta RK (2016) Recent progress on ferroelectric polymer-based
nanocomposites for high energy density capacitors: synthesis, dielectric properties, and future
aspects. Chem Rev 116:4260–4317
27. Wang F, Wang J-W, Li S-q, Xiao J (2009) Dielectric properties of epoxy composites with
modified multiwalled carbon nanotubes. Polym Bull 63:101–110
28. Yuan J-K, Yao S-H, Dang Z-M, Sylvestre A, Genestoux M, Bai J (2011) Giant dielectric permittivity Nanocomposites: realizing true potential of pristine carbon nanotubes in
polyvinylidene fluoride matrix through an enhanced interfacial interaction. J Phys Chem C
115:5515–5552
29. Mathieu B, Anthony C, Arnaud A, Lionel F (2015) CNT aggregation mechanisms probed by
electrical and dielectric measurements. J Mater Chem C 3:5769
30. Shi S-L, Liang J (2006) Effect of multiwall carbon nanotubes on electrical and dielectric
properties of yttria-stabilized zirconia ceramic. J Am Ceram Soc 89:3533–3535
31. Lorenz H, Fritzsche J, Das A, Stueckelhuber K, Jurk R, Heinrich G, Klueppel M (2009)
Advanced elastomer nano-composites based on CNT-hybrid filler systems. Compos Sci
Technol 69:2135–2143
