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Erschienen in: Journal of Nanoparticle Research 10/2012

01.10.2012 | Research Paper

Structural and electrical characterization of bamboo-shaped C–N nanotubes–poly ethylene oxide (PEO) composite films

verfasst von: Ram Manohar Yadav, Pramod S. Dobal

Erschienen in: Journal of Nanoparticle Research | Ausgabe 10/2012

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Abstract

We have prepared bamboo-shaped C–N nanotubes–polyethylene oxide (PEO) composite films by solution cast technique and investigated their structural/microstructural and electrical properties and developed a correlation between them. The formation of clean compartmentalized bamboo-shaped C–N nanotubes was confirmed by TEM. SEM investigations revealed a homogeneous dispersion of nanotubes in PEO matrix. Enhanced electrical conductivity was observed for the C–N nanotubes–PEO composites than bare PEO. The conductivity measurements on the C–N nanotubes–PEO composite films with ~20 wt % concentration of C–N nanotubes showed an increase of eight orders (~7.5 × 10−8 to 6.2 S cm−1) of magnitude in conductivity from bare PEO film. Raman spectra showed the stress-free nature of the composites and established the bonding of nanotubes with PEO, which resulted in the variation of Raman parameters. The Raman data of composites corroborate the findings of variation in electrical conductivity.

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Literatur
Zurück zum Zitat Ajayan PM, Stephan O, Colliex C, Trauth D (1994) Aligned Carbon nanotube arrays formed by cutting a polymer resin-nanotube composite. Science 265:1212–1214CrossRef Ajayan PM, Stephan O, Colliex C, Trauth D (1994) Aligned Carbon nanotube arrays formed by cutting a polymer resin-nanotube composite. Science 265:1212–1214CrossRef
Zurück zum Zitat Ajayan PM, Schadler LS, Giannaris C, Rubio A (2000) Single-walled carbon nanotube-polymer composites: strength and weakness. Adv Mater 12:750–753CrossRef Ajayan PM, Schadler LS, Giannaris C, Rubio A (2000) Single-walled carbon nanotube-polymer composites: strength and weakness. Adv Mater 12:750–753CrossRef
Zurück zum Zitat Ajayan PM, Braun PV, Schadler LS (2003) Nanocomposite science and technology. Wiley-VCH, WeinheimCrossRef Ajayan PM, Braun PV, Schadler LS (2003) Nanocomposite science and technology. Wiley-VCH, WeinheimCrossRef
Zurück zum Zitat Akhtar MS, Park JG, Lee HC, Lee SK, Yang OB (2010) Carbon nanotubes–polyethylene oxide composite electrolyte for solid-state dye-sensitized solar cells. Electrochim Acta 55(7):2418–2423CrossRef Akhtar MS, Park JG, Lee HC, Lee SK, Yang OB (2010) Carbon nanotubes–polyethylene oxide composite electrolyte for solid-state dye-sensitized solar cells. Electrochim Acta 55(7):2418–2423CrossRef
Zurück zum Zitat Ali SR, Ma Y, Parajuli RR, Balogun Y, Lai WYC, He H (2007) A nonoxidative sensor based on a self-doped polyaniline/Carbon nanotube composite for sensitive and selective detection of the neurotransmitter dopamine. Anal Chem 79:2583–2587CrossRef Ali SR, Ma Y, Parajuli RR, Balogun Y, Lai WYC, He H (2007) A nonoxidative sensor based on a self-doped polyaniline/Carbon nanotube composite for sensitive and selective detection of the neurotransmitter dopamine. Anal Chem 79:2583–2587CrossRef
Zurück zum Zitat Assouline E, Lustiger A, Barber AH, Cooper CA, Klein E, Wachtel E, Wagner HD (2003) Nucliation ability of multiwalled carbon nanotubes in polypropylene composites. J Polym Sci Polym Phys Ed 41:520–527CrossRef Assouline E, Lustiger A, Barber AH, Cooper CA, Klein E, Wachtel E, Wagner HD (2003) Nucliation ability of multiwalled carbon nanotubes in polypropylene composites. J Polym Sci Polym Phys Ed 41:520–527CrossRef
Zurück zum Zitat Awasthi K, Awasthi S, Srivastava A, Kamalakaran R, Talapatra S, Ajayan PM, Srivastava ON (2006) Synthesis and characterization of carbon nanotube–polyethylene oxide composites. Nanotechnology 17:5417–5422CrossRef Awasthi K, Awasthi S, Srivastava A, Kamalakaran R, Talapatra S, Ajayan PM, Srivastava ON (2006) Synthesis and characterization of carbon nanotube–polyethylene oxide composites. Nanotechnology 17:5417–5422CrossRef
Zurück zum Zitat Bai JB, Allaoui A (2003) Effect of the length and the aggregate size of MWNTs on the improvement efficiency of the mechanical and electrical properties of nanocomposites—experimental investigation. Compos A Appl Sci Manufact 34(8):689–694CrossRef Bai JB, Allaoui A (2003) Effect of the length and the aggregate size of MWNTs on the improvement efficiency of the mechanical and electrical properties of nanocomposites—experimental investigation. Compos A Appl Sci Manufact 34(8):689–694CrossRef
Zurück zum Zitat Barrau S, Demont P, Peigney A, Laurent C, Lacabanne C (2003) DC and AC conductivity of Carbon nanotubes-polyepoxy composites. Macromolecules 36:5187–5194CrossRef Barrau S, Demont P, Peigney A, Laurent C, Lacabanne C (2003) DC and AC conductivity of Carbon nanotubes-polyepoxy composites. Macromolecules 36:5187–5194CrossRef
Zurück zum Zitat Barrau S, Demont P, Maraval C, Bernes A, Lacabanne C (2005) Glass transition temperature depression at the percolation threshold in carbon nanotube–epoxy resin and polypyrrole–epoxy resin composites. Macromol Rapid Comm 26(5):390–394CrossRef Barrau S, Demont P, Maraval C, Bernes A, Lacabanne C (2005) Glass transition temperature depression at the percolation threshold in carbon nanotube–epoxy resin and polypyrrole–epoxy resin composites. Macromol Rapid Comm 26(5):390–394CrossRef
Zurück zum Zitat Chakraborty G, Gupta K, Meikap AK, Babu R, Blau WJ (2011) Anomalous electrical transport properties of polyvinyl alcohol-multiwall carbon nanotubes composites below room temperature. J Appl Phys 109:033707–033709CrossRef Chakraborty G, Gupta K, Meikap AK, Babu R, Blau WJ (2011) Anomalous electrical transport properties of polyvinyl alcohol-multiwall carbon nanotubes composites below room temperature. J Appl Phys 109:033707–033709CrossRef
Zurück zum Zitat Chakraborty G, Gupta K, Rana D, Meikap AK (2012) Effect of multiwalled carbon nanotubes on electrical conductivity and magnetoconductivity of polyaniline. Adv Natl Sci Nanosci Nanotechnol 3:035015 (8 pp) Chakraborty G, Gupta K, Rana D, Meikap AK (2012) Effect of multiwalled carbon nanotubes on electrical conductivity and magnetoconductivity of polyaniline. Adv Natl Sci Nanosci Nanotechnol 3:035015 (8 pp)
Zurück zum Zitat Cioffi N, Torsi L, Ditaranto N, Tantillo G, Ghibelli L, Sabbatini L, Bleve-Zacheo T, D’Alessio M, Zambonin PG, Traversa E (2005) Copper nanoparticle/polymer composites with antifungal and bacteriostatic properties. Chem Mater 17(21):5255–5262CrossRef Cioffi N, Torsi L, Ditaranto N, Tantillo G, Ghibelli L, Sabbatini L, Bleve-Zacheo T, D’Alessio M, Zambonin PG, Traversa E (2005) Copper nanoparticle/polymer composites with antifungal and bacteriostatic properties. Chem Mater 17(21):5255–5262CrossRef
Zurück zum Zitat Curran SA, Ajayan PM, Blau WJ, Carroll DL, Coleman JN, Dalton AB, Davey AP, Drury A, McCarthy B, Maier S, Strevens A (1998) A composite from poly(m-phenylenevinylene-co-2,5-dioctoxy-p-phenylenevinylene) and carbon nanotubes: a novel material for molecular optoelectronics. Adv Mater 10:1091–1093CrossRef Curran SA, Ajayan PM, Blau WJ, Carroll DL, Coleman JN, Dalton AB, Davey AP, Drury A, McCarthy B, Maier S, Strevens A (1998) A composite from poly(m-phenylenevinylene-co-2,5-dioctoxy-p-phenylenevinylene) and carbon nanotubes: a novel material for molecular optoelectronics. Adv Mater 10:1091–1093CrossRef
Zurück zum Zitat Datsyuk V, Piecourt CG, Dagreou S, Billon L, Dupin JC, Flahaut E, Peigney A, Laurent C (2005) Double walled carbon nanotube/polymer composites via in situ nitroxide mediated polymerisation of amphiphilic block copolymers. Carbon 43:873–876CrossRef Datsyuk V, Piecourt CG, Dagreou S, Billon L, Dupin JC, Flahaut E, Peigney A, Laurent C (2005) Double walled carbon nanotube/polymer composites via in situ nitroxide mediated polymerisation of amphiphilic block copolymers. Carbon 43:873–876CrossRef
Zurück zum Zitat Dresselhaus MS, Pimenta MA, Eklund PC, Dresselhaus G (2000) Raman scattering in fullerenes and related carbon-based material. In: Weber WH, Merlin R (eds) Raman scattering in material sciences, Springer Series in Materials Science. Springer, Berlin, vol 42, pp 314–364 Dresselhaus MS, Pimenta MA, Eklund PC, Dresselhaus G (2000) Raman scattering in fullerenes and related carbon-based material. In: Weber WH, Merlin R (eds) Raman scattering in material sciences, Springer Series in Materials Science. Springer, Berlin, vol 42, pp 314–364
Zurück zum Zitat Dresselhaus MS, Dresselhaus G, Jorio A, Filho AGS, Saito R (2002) Raman spectroscopy on isolated single wall carbon nanotubes. Carbon 40:2043–2061CrossRef Dresselhaus MS, Dresselhaus G, Jorio A, Filho AGS, Saito R (2002) Raman spectroscopy on isolated single wall carbon nanotubes. Carbon 40:2043–2061CrossRef
Zurück zum Zitat Dror Y, Salalha W, Khalfin RL, Cohen Y, Yarin AL, Zussman E (2003) Carbon nanotubes embedded in oriented polymer nanofibers by electrospinning. Langmuir 19:7012–7020CrossRef Dror Y, Salalha W, Khalfin RL, Cohen Y, Yarin AL, Zussman E (2003) Carbon nanotubes embedded in oriented polymer nanofibers by electrospinning. Langmuir 19:7012–7020CrossRef
Zurück zum Zitat Du F, Fischer JE, Winey KI (2005) Effect of nanotube alignment on percolation conductivity in carbon nanotube/polymer composites. Phys Rev B 72:121404 R Du F, Fischer JE, Winey KI (2005) Effect of nanotube alignment on percolation conductivity in carbon nanotube/polymer composites. Phys Rev B 72:121404 R
Zurück zum Zitat Ge JJ, Hou H, Li Q, Graham MJ, Greiner A, Reneker DH, Harris FW, Cheng SZD (2004) Assembly of well-aligned multiwalled carbon nanotubes in confined polyacrylonitrile environments: electrospun composite nanofiber sheets. J Am Chem Soc 126:15754–15761CrossRef Ge JJ, Hou H, Li Q, Graham MJ, Greiner A, Reneker DH, Harris FW, Cheng SZD (2004) Assembly of well-aligned multiwalled carbon nanotubes in confined polyacrylonitrile environments: electrospun composite nanofiber sheets. J Am Chem Soc 126:15754–15761CrossRef
Zurück zum Zitat Haggenmuller R, Gonmas HH, Rinzler AG, Fischer JE, Winey KI (2000) Aligned single-wall carbon nanotubes in composites by melt processing methods. Chem Phys Lett 330:219–225CrossRef Haggenmuller R, Gonmas HH, Rinzler AG, Fischer JE, Winey KI (2000) Aligned single-wall carbon nanotubes in composites by melt processing methods. Chem Phys Lett 330:219–225CrossRef
Zurück zum Zitat Hou HQ, Ge JJ, Zeng J, Li Q, Reneker DH, Greiner A, Cheng SZD (2005) Electrospun polyacrylonitrile nanofibers containing a high concentration of well-aligned multiwall carbon nanotubes. Chem Mater 17:967–973CrossRef Hou HQ, Ge JJ, Zeng J, Li Q, Reneker DH, Greiner A, Cheng SZD (2005) Electrospun polyacrylonitrile nanofibers containing a high concentration of well-aligned multiwall carbon nanotubes. Chem Mater 17:967–973CrossRef
Zurück zum Zitat Iijima S (1991) Helical microtubules of graphitic carbon. Nature 354:56–58CrossRef Iijima S (1991) Helical microtubules of graphitic carbon. Nature 354:56–58CrossRef
Zurück zum Zitat Israelachvili JN (2006) Intermolecular surface forces. Academic Press, San Diego, 3rd edn Israelachvili JN (2006) Intermolecular surface forces. Academic Press, San Diego, 3rd edn
Zurück zum Zitat Jia Z, Wang ZY, Xu CL, Liang J, Wei BQ, Wu DH, Zhu SW (1999) Study on poly(methyl methacrylate)/carbon nanotube composites. Mater Sci Eng, A 271:395–400CrossRef Jia Z, Wang ZY, Xu CL, Liang J, Wei BQ, Wu DH, Zhu SW (1999) Study on poly(methyl methacrylate)/carbon nanotube composites. Mater Sci Eng, A 271:395–400CrossRef
Zurück zum Zitat Jin Z, Pramoda KP, Xu G, Goh SH (2001) Dynamic mechanical behavior of melt-processed multi-walled carbon nanotube/poly (methyl methacrylate) composites. Chem Phys Lett 337:43–47CrossRef Jin Z, Pramoda KP, Xu G, Goh SH (2001) Dynamic mechanical behavior of melt-processed multi-walled carbon nanotube/poly (methyl methacrylate) composites. Chem Phys Lett 337:43–47CrossRef
Zurück zum Zitat Jorio A, Vasconcelos D, Filho AGS, Dresselhaus G, Dresselhaus MS, Swan AK, Ünlü MS, Goldberg BB, Pimenta MA, Hafner JH, Lieber CM, Saito R (2001) G-band Raman spectra of isolated single wall carbon nanotubes diameter and chirality dependence. Mater Res Soc Proc Fall 706:187–192 Jorio A, Vasconcelos D, Filho AGS, Dresselhaus G, Dresselhaus MS, Swan AK, Ünlü MS, Goldberg BB, Pimenta MA, Hafner JH, Lieber CM, Saito R (2001) G-band Raman spectra of isolated single wall carbon nanotubes diameter and chirality dependence. Mater Res Soc Proc Fall 706:187–192
Zurück zum Zitat Ko F, Gogotsi Y, Ali A, Naguib N, Ye HH, Yang GL, Li C, Willis P (2003) Electrospinning of continuous carbon nanotube-filled nanofiber yarns. Adv Mater 15:1161–1165CrossRef Ko F, Gogotsi Y, Ali A, Naguib N, Ye HH, Yang GL, Li C, Willis P (2003) Electrospinning of continuous carbon nanotube-filled nanofiber yarns. Adv Mater 15:1161–1165CrossRef
Zurück zum Zitat Kovtyukhova NI, Mallouk TE (2005) Ultrathin anisotropic films assembled from individual single-walled Carbon nanotubes and amine polymers. J Phys Chem B 109:2540–2545CrossRef Kovtyukhova NI, Mallouk TE (2005) Ultrathin anisotropic films assembled from individual single-walled Carbon nanotubes and amine polymers. J Phys Chem B 109:2540–2545CrossRef
Zurück zum Zitat Kymakis E, Amaratunga GAJ (2002) Single-wall Carbon nanotube/conjugated polymer photovoltaic devices. Appl Phys Lett 80:112–114CrossRef Kymakis E, Amaratunga GAJ (2002) Single-wall Carbon nanotube/conjugated polymer photovoltaic devices. Appl Phys Lett 80:112–114CrossRef
Zurück zum Zitat Kymakis E, Alexandou I, Amaratunga GAJ (2002) Single-walled carbon nanotube-polymer composites: electrical optical and structural investigation. Synth Met 127:59–62CrossRef Kymakis E, Alexandou I, Amaratunga GAJ (2002) Single-walled carbon nanotube-polymer composites: electrical optical and structural investigation. Synth Met 127:59–62CrossRef
Zurück zum Zitat Li Y, Zhang B, Tao XY, Xu JM, Huang WZ, Luo JH, Li T, Bao Y, Geise HJ (2005) Mass production of high-quality multi-walled carbon nanotube bundles on a Ni/Mo/MgO catalyst. Carbon 43:295–301CrossRef Li Y, Zhang B, Tao XY, Xu JM, Huang WZ, Luo JH, Li T, Bao Y, Geise HJ (2005) Mass production of high-quality multi-walled carbon nanotube bundles on a Ni/Mo/MgO catalyst. Carbon 43:295–301CrossRef
Zurück zum Zitat Li CY, Thostenson ET, Chou TW (2008) Effect of nanotube waviness on the electrical conductivity of carbon nanotube-based composites. Compos Sci Technol 68:1445–1452CrossRef Li CY, Thostenson ET, Chou TW (2008) Effect of nanotube waviness on the electrical conductivity of carbon nanotube-based composites. Compos Sci Technol 68:1445–1452CrossRef
Zurück zum Zitat Liao K, Li S (2001) Interfacial characteristics of carbon nanotube-polystyrene composite system. Appl Phys Lett 79:4225–4227CrossRef Liao K, Li S (2001) Interfacial characteristics of carbon nanotube-polystyrene composite system. Appl Phys Lett 79:4225–4227CrossRef
Zurück zum Zitat Liu L, Qin Y, Guo ZX, Zhu D (2003) Eduction of solubilized multi-walled carbon nanotubes. Carbon 41:331–335CrossRef Liu L, Qin Y, Guo ZX, Zhu D (2003) Eduction of solubilized multi-walled carbon nanotubes. Carbon 41:331–335CrossRef
Zurück zum Zitat Liu TX, Phang IY, Shen L, Chow SY, Zhang WD (2004) Morphology and mechanical properties of multiwalled carbon nanotubes reinforced nylon-6 composites. Macromolecules 37:7214–7222CrossRef Liu TX, Phang IY, Shen L, Chow SY, Zhang WD (2004) Morphology and mechanical properties of multiwalled carbon nanotubes reinforced nylon-6 composites. Macromolecules 37:7214–7222CrossRef
Zurück zum Zitat Lorenzo LMR, Saldaña L, Garzón LB, Carrodeguas RG, Aza SD, Vilaboa N, Román JS (2012) Feasibility of ceramic–polymer composite cryogels as scaffolds for bone tissue engineering. J Tissue Eng Regenerat Med 6(6):421–433CrossRef Lorenzo LMR, Saldaña L, Garzón LB, Carrodeguas RG, Aza SD, Vilaboa N, Román JS (2012) Feasibility of ceramic–polymer composite cryogels as scaffolds for bone tissue engineering. J Tissue Eng Regenerat Med 6(6):421–433CrossRef
Zurück zum Zitat Mathur A, Roy SS, Tweedie M, Maguire PD, Mclaughlin JA (2009) Electrical and Raman spectroscopic studies of vertically aligned multi-walled carbon nanotubes. J Nanosci Nanotechnol 9:4392–4396CrossRef Mathur A, Roy SS, Tweedie M, Maguire PD, Mclaughlin JA (2009) Electrical and Raman spectroscopic studies of vertically aligned multi-walled carbon nanotubes. J Nanosci Nanotechnol 9:4392–4396CrossRef
Zurück zum Zitat Mdarhri A, Carmona F, Brosseau C, Delhaes P (2008) Direct current electrical and microwave properties of polymer-multiwalled carbon nanotubes composites. J Appl Phys 103:054303–054309CrossRef Mdarhri A, Carmona F, Brosseau C, Delhaes P (2008) Direct current electrical and microwave properties of polymer-multiwalled carbon nanotubes composites. J Appl Phys 103:054303–054309CrossRef
Zurück zum Zitat Mitchell CA, Bahr JL, Arepalli S, Tour JM, Krishnamoorti R (2002) Dispersion of functionalized Carbon nanotubes in polystyrene. Macromolecules 35:8825–8830CrossRef Mitchell CA, Bahr JL, Arepalli S, Tour JM, Krishnamoorti R (2002) Dispersion of functionalized Carbon nanotubes in polystyrene. Macromolecules 35:8825–8830CrossRef
Zurück zum Zitat Mott NF, Davis E (1979) Electronic processes in non-crystalline materials, 2nd edn. Oxford University Press, Oxford Mott NF, Davis E (1979) Electronic processes in non-crystalline materials, 2nd edn. Oxford University Press, Oxford
Zurück zum Zitat Obare SO, Jana NR, Murphy CJ (2001) Preparation of polystyrene and silica-coated gold nanorods and their use as templates for the synthesis of hollow nanotubes. Nano Lett 1:601–603CrossRef Obare SO, Jana NR, Murphy CJ (2001) Preparation of polystyrene and silica-coated gold nanorods and their use as templates for the synthesis of hollow nanotubes. Nano Lett 1:601–603CrossRef
Zurück zum Zitat Park SJ, Cho MS, Lim ST, Cho HJ, Jhon MS (2003) Synthesis and dispersion characteristics of multi-walled Carbon nanotube composites with poly(methyl methacrylate) prepared by in situ bulk polymerization macromol. Rapid Commun. 24:1070–1073CrossRef Park SJ, Cho MS, Lim ST, Cho HJ, Jhon MS (2003) Synthesis and dispersion characteristics of multi-walled Carbon nanotube composites with poly(methyl methacrylate) prepared by in situ bulk polymerization macromol. Rapid Commun. 24:1070–1073CrossRef
Zurück zum Zitat Peigney A (2003) Composite materials: tougher ceramics with nanotubes. Nat Mater 2:15–16CrossRef Peigney A (2003) Composite materials: tougher ceramics with nanotubes. Nat Mater 2:15–16CrossRef
Zurück zum Zitat Pradhan B, Setyowati K, Liu H, Waldeck DH, Chen J (2008) Carbon nanotube-polymer nanocomposite infrared sensor. Nano Lett 8(4):1142–1146CrossRef Pradhan B, Setyowati K, Liu H, Waldeck DH, Chen J (2008) Carbon nanotube-polymer nanocomposite infrared sensor. Nano Lett 8(4):1142–1146CrossRef
Zurück zum Zitat Qian D, Dickey EC, Andrews R, Rantell T (2000) Load transfer and deformation mechanisms in carbon nanotube-polystyrene composites. Appl Phys Lett 76:2868–2870CrossRef Qian D, Dickey EC, Andrews R, Rantell T (2000) Load transfer and deformation mechanisms in carbon nanotube-polystyrene composites. Appl Phys Lett 76:2868–2870CrossRef
Zurück zum Zitat Ruan B, Jacobi AM (2012) Ultrasonication effects on thermal and rheological properties of carbon nanotube suspensions. Nanoscale Res Lett 7(1):127CrossRef Ruan B, Jacobi AM (2012) Ultrasonication effects on thermal and rheological properties of carbon nanotube suspensions. Nanoscale Res Lett 7(1):127CrossRef
Zurück zum Zitat Sandler J, Shaffer MSP, Prasse T, Bauhofer W, Schulte K, Windle AH (1999) Development of a dispersion process for carbon nanotubes in an epoxy matrix and the resulting electrical properties. Polymer 40:5967–5971CrossRef Sandler J, Shaffer MSP, Prasse T, Bauhofer W, Schulte K, Windle AH (1999) Development of a dispersion process for carbon nanotubes in an epoxy matrix and the resulting electrical properties. Polymer 40:5967–5971CrossRef
Zurück zum Zitat Sen R, Zhao B, Perea D, Itkis ME, Hu H, Love J, Bekyarova E, Haddon RC (2004) Preparation of single walled carbon nanotube reinforced polystyrene and polyurethane nanofibers and membranes by electrospinning. Nano Lett 4:459–464CrossRef Sen R, Zhao B, Perea D, Itkis ME, Hu H, Love J, Bekyarova E, Haddon RC (2004) Preparation of single walled carbon nanotube reinforced polystyrene and polyurethane nanofibers and membranes by electrospinning. Nano Lett 4:459–464CrossRef
Zurück zum Zitat Sheng P (1980) Fluctuation-induced tunneling conduction in disordered materials. Phys Rev B 21:2180–2195CrossRef Sheng P (1980) Fluctuation-induced tunneling conduction in disordered materials. Phys Rev B 21:2180–2195CrossRef
Zurück zum Zitat Sheng P, Sichel EK, Gittleman JL (1978) Fluctuation-induced tunnelling conduction in carbon-polyvinylchloride composites. Phys Rev Lett 40:1197–1200CrossRef Sheng P, Sichel EK, Gittleman JL (1978) Fluctuation-induced tunnelling conduction in carbon-polyvinylchloride composites. Phys Rev Lett 40:1197–1200CrossRef
Zurück zum Zitat Singh I, Verma A, Kaur I, Bharadwaj LM, Bhatia V, Jain VK, Bhatia CS, Bhatnagar PK, Mathur PC (2010) The effect of length of single-walled carbon nanotubes (SWNTs) on electrical properties of conducting polymer–SWNT composites. J Polym Sci B Polym Phys 48(1):89–95CrossRef Singh I, Verma A, Kaur I, Bharadwaj LM, Bhatia V, Jain VK, Bhatia CS, Bhatnagar PK, Mathur PC (2010) The effect of length of single-walled carbon nanotubes (SWNTs) on electrical properties of conducting polymer–SWNT composites. J Polym Sci B Polym Phys 48(1):89–95CrossRef
Zurück zum Zitat Spitalsky Z, Tasis D, Papagelis K, Galiotis C (2010) Carbon nanotube–polymer composites: chemistry, processing, mechanical and electrical properties. Prog Polym Sci 35(3):357–401CrossRef Spitalsky Z, Tasis D, Papagelis K, Galiotis C (2010) Carbon nanotube–polymer composites: chemistry, processing, mechanical and electrical properties. Prog Polym Sci 35(3):357–401CrossRef
Zurück zum Zitat Suhr J, Koratkar N, Keblinski P, Ajayan PM (2005) Viscoelasticity in carbon nanotube composites. Nat Mater 4:134–137CrossRef Suhr J, Koratkar N, Keblinski P, Ajayan PM (2005) Viscoelasticity in carbon nanotube composites. Nat Mater 4:134–137CrossRef
Zurück zum Zitat Tan P, An L, Liu L, Guo Z, Czerw R, Carroll DL, Ajayan PM, Zhang N, Guo H (2002) Probing the phonon dispersion relations of graphite from the double-resonance process of Stokes and anti-Stokes Raman scatterings in multiwalled carbon nanotubes. Phys Rev B 66:245410–245418CrossRef Tan P, An L, Liu L, Guo Z, Czerw R, Carroll DL, Ajayan PM, Zhang N, Guo H (2002) Probing the phonon dispersion relations of graphite from the double-resonance process of Stokes and anti-Stokes Raman scatterings in multiwalled carbon nanotubes. Phys Rev B 66:245410–245418CrossRef
Zurück zum Zitat Tiwari R, Garcia E (2011) The state of understanding of ionic polymer metal composite architecture: a review. Smart Mater Struct 20:083001CrossRef Tiwari R, Garcia E (2011) The state of understanding of ionic polymer metal composite architecture: a review. Smart Mater Struct 20:083001CrossRef
Zurück zum Zitat Tuinstra F, Koenig JL (1970) Raman spectrum of graphite. J Chem Phys 53:1126–1130CrossRef Tuinstra F, Koenig JL (1970) Raman spectrum of graphite. J Chem Phys 53:1126–1130CrossRef
Zurück zum Zitat Valentini L, Biagiotti J, Kenny JM, Santucci SJ (2003) Effects of single-walled carbon nanotubes on the crystallization behavior of polypropylene. J Appl Polym Sci 87:708–713CrossRef Valentini L, Biagiotti J, Kenny JM, Santucci SJ (2003) Effects of single-walled carbon nanotubes on the crystallization behavior of polypropylene. J Appl Polym Sci 87:708–713CrossRef
Zurück zum Zitat Xia HS, Song M (2005) Preparation and characterization of polyurethane–carbon nanotube composites. Soft Matter 1:386–394CrossRef Xia HS, Song M (2005) Preparation and characterization of polyurethane–carbon nanotube composites. Soft Matter 1:386–394CrossRef
Zurück zum Zitat Xia HS, Wang Q, Li KS, Hu GJ (2004) Preparation of polypropylene/carbon nanotube composite powder with a solid-state mechanochemical pulverization process. J Appl Polym Sci 93:378–386CrossRef Xia HS, Wang Q, Li KS, Hu GJ (2004) Preparation of polypropylene/carbon nanotube composite powder with a solid-state mechanochemical pulverization process. J Appl Polym Sci 93:378–386CrossRef
Zurück zum Zitat Xu XJ, Thwe MM, Shearwood C, Liao K (2002) Mechanical properties and interfacial characteristics of carbon-nanotube-reinforced epoxy thin films. Appl Phys Lett 81:2833CrossRef Xu XJ, Thwe MM, Shearwood C, Liao K (2002) Mechanical properties and interfacial characteristics of carbon-nanotube-reinforced epoxy thin films. Appl Phys Lett 81:2833CrossRef
Zurück zum Zitat Yadav RM, Srivastava A, Srivastava ON (2004) Synthesis of bamboo-shaped carbon-nitrogen nanotubes using acetonitrile-ferrocene precursor. J Nanosci Nanotech 4(7):719–721CrossRef Yadav RM, Srivastava A, Srivastava ON (2004) Synthesis of bamboo-shaped carbon-nitrogen nanotubes using acetonitrile-ferrocene precursor. J Nanosci Nanotech 4(7):719–721CrossRef
Zurück zum Zitat Yadav RM, Sripathi T, Srivastava A, Srivastava ON (2005) Effect of ferrocene concentration on the synthesis of bamboo-shaped carbon–nitrogen nanotube bundles. J Nanosci Nanotechnol 5:820–824CrossRef Yadav RM, Sripathi T, Srivastava A, Srivastava ON (2005) Effect of ferrocene concentration on the synthesis of bamboo-shaped carbon–nitrogen nanotube bundles. J Nanosci Nanotechnol 5:820–824CrossRef
Zurück zum Zitat Yadav RM, Singh DP, Sripathi T, Srivastava ON (2008) Synthesis of C–N nanotube blocks and Y-junctions in bamboo-like C–N nanotubes. J Nanopart Res 10:1349–1354CrossRef Yadav RM, Singh DP, Sripathi T, Srivastava ON (2008) Synthesis of C–N nanotube blocks and Y-junctions in bamboo-like C–N nanotubes. J Nanopart Res 10:1349–1354CrossRef
Zurück zum Zitat Yadav RM, Awasthi K, Srivastava ON (2011) Preparation of carbon-nitrogen nanotubes- poly ethylene oxide composites films and their electrical conductivity measurement. Int J Nanosci 10(4):1091–1094CrossRef Yadav RM, Awasthi K, Srivastava ON (2011) Preparation of carbon-nitrogen nanotubes- poly ethylene oxide composites films and their electrical conductivity measurement. Int J Nanosci 10(4):1091–1094CrossRef
Zurück zum Zitat Yang Y, Grulke EA, Zhang ZG, Wu G (2006) Thermal and rheological properties of carbon nanotube-in-oil dispersions. J Appl Phys 99:114307CrossRef Yang Y, Grulke EA, Zhang ZG, Wu G (2006) Thermal and rheological properties of carbon nanotube-in-oil dispersions. J Appl Phys 99:114307CrossRef
Zurück zum Zitat Yoshino K, Kajii H, Araki H, Sonoda T, Take H, Lee S (1999) Electrical and optical properties of conducting polymer-fullerene and conducting polymer-carbon nanotube composites. Fuller Sci Technol 7:695–711CrossRef Yoshino K, Kajii H, Araki H, Sonoda T, Take H, Lee S (1999) Electrical and optical properties of conducting polymer-fullerene and conducting polymer-carbon nanotube composites. Fuller Sci Technol 7:695–711CrossRef
Zurück zum Zitat Zhang WD, Shen L, Phang IY, Liu TX (2004) Carbon nanotubes reinforced nylon-6 composite prepared by simple melt-compounding. Macromolecules 37:256–259CrossRef Zhang WD, Shen L, Phang IY, Liu TX (2004) Carbon nanotubes reinforced nylon-6 composite prepared by simple melt-compounding. Macromolecules 37:256–259CrossRef
Metadaten
Titel
Structural and electrical characterization of bamboo-shaped C–N nanotubes–poly ethylene oxide (PEO) composite films
verfasst von
Ram Manohar Yadav
Pramod S. Dobal
Publikationsdatum
01.10.2012
Verlag
Springer Netherlands
Erschienen in
Journal of Nanoparticle Research / Ausgabe 10/2012
Print ISSN: 1388-0764
Elektronische ISSN: 1572-896X
DOI
https://doi.org/10.1007/s11051-012-1155-3

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