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Erschienen in: Colloid and Polymer Science 9/2013

01.09.2013 | Original Contribution

Electrorheology of aniline oligomers

verfasst von: Miroslav Mrlik, Michal Sedlacik, Vladimir Pavlinek, Patrycja Bober, Miroslava Trchová, Jaroslav Stejskal, Petr Saha

Erschienen in: Colloid and Polymer Science | Ausgabe 9/2013

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Abstract

Aniline oligomers were prepared by the oxidation of aniline with p-benzoquinone in aqueous solutions of methanesulfonic acid (MSA) of various concentrations. Their molecular structures were assessed by Fourier transform infrared spectroscopy. The electrorheological (ER) behavior of their silicone oil suspensions under applied electric field has been investigated. Shear stress at a low shear rate, τ 0.9, was used as a criterion of the rigidity of internal structures created by the application of an electric field. It was established from the fitting of the dielectric spectra of the suspensions with the Havriliak–Negami model that dielectric relaxation strength, as a degree of polarization induced by an external field contributing to the enhanced ER effect, increases and relaxation time, i.e., the response of the particle to the application of the field, decreases when a higher molar concentration of MSA is used. The best values were observed for suspensions of the sample prepared in the presence of 0.5 M of MSA. This suspension creates stiff internal structures under an applied electric field strength of 2 kV mm−1 with τ 0.9 of nearly 50 Pa, which is even slightly of higher value than that obtained for standard polyaniline base ER suspension measured at the same conditions. The concentration of the MSA used in the preparation of oligomers seems to be a crucial factor influencing the conductivity, dielectric properties and, consequently, rheological behavior, and finally ER activity of their suspensions.

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Literatur
1.
Zurück zum Zitat Block H, Kelly JP (1988) Electro-rheology. J Phys D Appl Phys 21:1661–1677CrossRef Block H, Kelly JP (1988) Electro-rheology. J Phys D Appl Phys 21:1661–1677CrossRef
2.
Zurück zum Zitat Fang FF, Choi HJ, Joo J (2008) Conducting polymer/clay nanocomposites and their applications. J Nanosci Nanotechnol 8:1559–1581CrossRef Fang FF, Choi HJ, Joo J (2008) Conducting polymer/clay nanocomposites and their applications. J Nanosci Nanotechnol 8:1559–1581CrossRef
3.
Zurück zum Zitat Hao T, Xu ZM, Xu YZ (1997) Correlation of the dielectric properties of dispersed particles with the electrorheological effect. J Colloid Interface Sci 190:334–340CrossRef Hao T, Xu ZM, Xu YZ (1997) Correlation of the dielectric properties of dispersed particles with the electrorheological effect. J Colloid Interface Sci 190:334–340CrossRef
4.
Zurück zum Zitat Choi HJ, Jhon MS (2009) Electrorheology of polymers and nanocomposites. Soft Matter 5:1562–1567CrossRef Choi HJ, Jhon MS (2009) Electrorheology of polymers and nanocomposites. Soft Matter 5:1562–1567CrossRef
5.
Zurück zum Zitat Jordan TC, Shaw MT (1989) Electrorheology. IEEE Trans Electr Insul 24:849–878CrossRef Jordan TC, Shaw MT (1989) Electrorheology. IEEE Trans Electr Insul 24:849–878CrossRef
6.
Zurück zum Zitat Parthasarathy M, Klingenberg DJ (1996) Electrorheology: mechanisms and models. Mater Sci Eng R Rep 17:57–103CrossRef Parthasarathy M, Klingenberg DJ (1996) Electrorheology: mechanisms and models. Mater Sci Eng R Rep 17:57–103CrossRef
7.
Zurück zum Zitat Sung JH, Cho MS, Choi HJ, Jhon MS (2004) Electrorheology of semiconducting polymers. J Ind Eng Chem 10:1217–1229 Sung JH, Cho MS, Choi HJ, Jhon MS (2004) Electrorheology of semiconducting polymers. J Ind Eng Chem 10:1217–1229
8.
Zurück zum Zitat He Y, Cheng QL, Pavlinek V, Li CZ, Saha P (2009) Synthesis and electrorheological characteristics of titanate nanotube suspensions under oscillatory shear. J Ind Eng Chem 15:550–554CrossRef He Y, Cheng QL, Pavlinek V, Li CZ, Saha P (2009) Synthesis and electrorheological characteristics of titanate nanotube suspensions under oscillatory shear. J Ind Eng Chem 15:550–554CrossRef
9.
Zurück zum Zitat Mrlik M, Pavlinek V, Saha P, Quadrat O (2011) Electrorheological properties of suspensions of polypyrrole-coated titanate nanorods. Appl Rheol 21:52365 Mrlik M, Pavlinek V, Saha P, Quadrat O (2011) Electrorheological properties of suspensions of polypyrrole-coated titanate nanorods. Appl Rheol 21:52365
10.
Zurück zum Zitat Ramos-Tejada MM, Espin MJ, Perea R, Delgado AV (2009) Electrorheology of suspensions of elongated goethite particles. J Non-Newtonian Fluid Mech 159:34–40CrossRef Ramos-Tejada MM, Espin MJ, Perea R, Delgado AV (2009) Electrorheology of suspensions of elongated goethite particles. J Non-Newtonian Fluid Mech 159:34–40CrossRef
11.
Zurück zum Zitat Rankin PJ, Ginder JM, Klingenberg DJ (1998) Electro- and magneto-rheology. Curr Opin Colloid Interface Sci 3:373–381CrossRef Rankin PJ, Ginder JM, Klingenberg DJ (1998) Electro- and magneto-rheology. Curr Opin Colloid Interface Sci 3:373–381CrossRef
12.
Zurück zum Zitat Sedlacik M, Mrlik M, Pavlinek V, Saha P, Quadrat O (2012) Electrorheological properties of suspensions of hollow globular titanium oxide/polypyrrole particles. Colloid Polym Sci 290:41–48CrossRef Sedlacik M, Mrlik M, Pavlinek V, Saha P, Quadrat O (2012) Electrorheological properties of suspensions of hollow globular titanium oxide/polypyrrole particles. Colloid Polym Sci 290:41–48CrossRef
13.
Zurück zum Zitat Yin JB, Zhao XP (2011) Electrorheology of nanofiber suspensions. Nanoscale Res Lett 6:256CrossRef Yin JB, Zhao XP (2011) Electrorheology of nanofiber suspensions. Nanoscale Res Lett 6:256CrossRef
14.
Zurück zum Zitat Fang FF, Choi HJ, Seo Y (2010) Novel fabrication of polyaniline particles wrapped by exfoliated clay sheets and their electrorheology. J Nanosci Nanotechnol 10:285–289CrossRef Fang FF, Choi HJ, Seo Y (2010) Novel fabrication of polyaniline particles wrapped by exfoliated clay sheets and their electrorheology. J Nanosci Nanotechnol 10:285–289CrossRef
15.
Zurück zum Zitat Cheng QL, He Y, Pavlinek V, Li CZ, Saha P (2008) Surfactant-assisted polypyrrole/titanate composite nanofibers: morphology, structure and electrical properties. Synth Met 158:953–957CrossRef Cheng QL, He Y, Pavlinek V, Li CZ, Saha P (2008) Surfactant-assisted polypyrrole/titanate composite nanofibers: morphology, structure and electrical properties. Synth Met 158:953–957CrossRef
16.
Zurück zum Zitat Cheng QL, Pavlinek V, He Y, Li CZ, Saha P (2009) Electrorheological characteristics of polyaniline/titanate composite nanotube suspensions. Colloid Polym Sci 287:435–441CrossRef Cheng QL, Pavlinek V, He Y, Li CZ, Saha P (2009) Electrorheological characteristics of polyaniline/titanate composite nanotube suspensions. Colloid Polym Sci 287:435–441CrossRef
17.
Zurück zum Zitat Kim SG, Lim JY, Sung JH, Choi HJ, Seo Y (2007) Emulsion polymerized polyaniline synthesized with dodecylbenzenesulfonic acid and its electrorheological characteristics: temperature effect. Polymer 48:6622–6631CrossRef Kim SG, Lim JY, Sung JH, Choi HJ, Seo Y (2007) Emulsion polymerized polyaniline synthesized with dodecylbenzenesulfonic acid and its electrorheological characteristics: temperature effect. Polymer 48:6622–6631CrossRef
18.
Zurück zum Zitat Liu YD, Park BJ, Kim YH, Choi HJ (2011) Smart monodisperse polystyrene/polyaniline core–shell structured hybrid microspheres fabricated by a controlled releasing technique and their electro-responsive characteristics. J Mater Chem 21:17396–17402CrossRef Liu YD, Park BJ, Kim YH, Choi HJ (2011) Smart monodisperse polystyrene/polyaniline core–shell structured hybrid microspheres fabricated by a controlled releasing technique and their electro-responsive characteristics. J Mater Chem 21:17396–17402CrossRef
19.
Zurück zum Zitat Stenicka M, Pavlinek V, Saha P, Blinova NV, Stejskal J, Quadrat O (2010) Electrorheology of suspensions of variously protonated polyaniline particles under steady and oscillatory shear. Appl Rheol 20:1–11 Stenicka M, Pavlinek V, Saha P, Blinova NV, Stejskal J, Quadrat O (2010) Electrorheology of suspensions of variously protonated polyaniline particles under steady and oscillatory shear. Appl Rheol 20:1–11
20.
Zurück zum Zitat Lin C, Shan JW (2007) Electrically tunable viscosity of dilute suspensions of carbon nanotubes. Phys Fluids 19:121702CrossRef Lin C, Shan JW (2007) Electrically tunable viscosity of dilute suspensions of carbon nanotubes. Phys Fluids 19:121702CrossRef
21.
Zurück zum Zitat Quadrat O, Stejskal J (2006) Polyaniline in electrorheology. J Ind Eng Chem 12:352–361 Quadrat O, Stejskal J (2006) Polyaniline in electrorheology. J Ind Eng Chem 12:352–361
22.
Zurück zum Zitat Stenicka M, Pavlinek V, Saha P, Blinova NV, Stejskal J, Quadrat O (2009) The electrorheological efficiency of polyaniline particles with various conductivities suspended in silicone oil. Colloid Polym Sci 287:403–412CrossRef Stenicka M, Pavlinek V, Saha P, Blinova NV, Stejskal J, Quadrat O (2009) The electrorheological efficiency of polyaniline particles with various conductivities suspended in silicone oil. Colloid Polym Sci 287:403–412CrossRef
23.
Zurück zum Zitat Stenicka M, Pavlinek V, Saha P, Blinova NV, Stejskal J, Quadrat O (2011) Structure changes of electrorheological fluids based on polyaniline particles with various hydrophilicities and time dependence of shear stress and conductivity during flow. Colloid Polym Sci 289:409–414CrossRef Stenicka M, Pavlinek V, Saha P, Blinova NV, Stejskal J, Quadrat O (2011) Structure changes of electrorheological fluids based on polyaniline particles with various hydrophilicities and time dependence of shear stress and conductivity during flow. Colloid Polym Sci 289:409–414CrossRef
24.
Zurück zum Zitat Block H, Kelly JP, Qin A, Watson T (1990) Materials and mechanisms in electrorheology. Langmuir 6:6–14CrossRef Block H, Kelly JP, Qin A, Watson T (1990) Materials and mechanisms in electrorheology. Langmuir 6:6–14CrossRef
25.
Zurück zum Zitat Choi HJ, Hong CH, Jhon MS (2007) Cole-Cole analysis on dielectric spectra of electrorheological suspensions. Int J Mod Phys B 21:4974–4980CrossRef Choi HJ, Hong CH, Jhon MS (2007) Cole-Cole analysis on dielectric spectra of electrorheological suspensions. Int J Mod Phys B 21:4974–4980CrossRef
26.
Zurück zum Zitat Lengalova A, Pavlinek V, Saha P, Stejskal J, Kitano T, Quadrat O (2003) The effect of dielectric properties on the electrorheology of suspensions of silica particles coated with polyaniline. Physica A 321:411–424CrossRef Lengalova A, Pavlinek V, Saha P, Stejskal J, Kitano T, Quadrat O (2003) The effect of dielectric properties on the electrorheology of suspensions of silica particles coated with polyaniline. Physica A 321:411–424CrossRef
27.
Zurück zum Zitat Mrlik M, Pavlinek V, Cheng QL, Saha P (2012) Synthesis of titanate/polypyrrole composite rod-like particles and the role of conducting polymer on electrorheological efficiency. Int J Mod Phys B 26:1250007CrossRef Mrlik M, Pavlinek V, Cheng QL, Saha P (2012) Synthesis of titanate/polypyrrole composite rod-like particles and the role of conducting polymer on electrorheological efficiency. Int J Mod Phys B 26:1250007CrossRef
28.
Zurück zum Zitat Stejskal J, Trchová M (2012) Aniline oligomers versus polyaniline. Polym Int 61:240–251CrossRef Stejskal J, Trchová M (2012) Aniline oligomers versus polyaniline. Polym Int 61:240–251CrossRef
29.
Zurück zum Zitat Stejskal J, Sapurina I, Trchová M, Konyushenko EN (2008) Oxidation of aniline: polyaniline granules, nanotubes, and oligoaniline microspheres. Macromolecules 41:3530–3536CrossRef Stejskal J, Sapurina I, Trchová M, Konyushenko EN (2008) Oxidation of aniline: polyaniline granules, nanotubes, and oligoaniline microspheres. Macromolecules 41:3530–3536CrossRef
30.
Zurück zum Zitat Stejskal J, Gilbert RG (2002) Polyaniline. Preparation of a conducting polymer (IUPAC technical report). Pure Appl Chem 74:857–867CrossRef Stejskal J, Gilbert RG (2002) Polyaniline. Preparation of a conducting polymer (IUPAC technical report). Pure Appl Chem 74:857–867CrossRef
31.
Zurück zum Zitat Ferreira DC, Pires JR, Temperini MLA (2011) Spectroscopic characterization of oligoaniline microspheres obtained by an aniline-persulfate approach. J Phys Chem B 115:1368–1375CrossRef Ferreira DC, Pires JR, Temperini MLA (2011) Spectroscopic characterization of oligoaniline microspheres obtained by an aniline-persulfate approach. J Phys Chem B 115:1368–1375CrossRef
32.
Zurück zum Zitat Surwade SP, Dua V, Manohar N, Manohar SK, Beck E, Ferraris JP (2009) Oligoaniline intermediates in the aniline–peroxydisulfate system. Synth Met 159:445–455CrossRef Surwade SP, Dua V, Manohar N, Manohar SK, Beck E, Ferraris JP (2009) Oligoaniline intermediates in the aniline–peroxydisulfate system. Synth Met 159:445–455CrossRef
33.
Zurück zum Zitat Silva CHB, Ferreira DC, Ando RA, Temperini MLA (2012) Aniline-1,4-benzoquinone as a model system for characterization of products from aniline oligomerization in low acidic media. Chem Phys Lett 551:130–133CrossRef Silva CHB, Ferreira DC, Ando RA, Temperini MLA (2012) Aniline-1,4-benzoquinone as a model system for characterization of products from aniline oligomerization in low acidic media. Chem Phys Lett 551:130–133CrossRef
34.
Zurück zum Zitat Havriliak S, Negami S (1967) A complex plane representation of dielectric and mechanical relaxation processes in some polymers. Polymer 8:161–172CrossRef Havriliak S, Negami S (1967) A complex plane representation of dielectric and mechanical relaxation processes in some polymers. Polymer 8:161–172CrossRef
35.
Zurück zum Zitat Cho MS, Choi HJ, Ahn WS (2004) Enhanced electrorheology of conducting polyaniline confined in MCM-41 channels. Langmuir 20:202–207CrossRef Cho MS, Choi HJ, Ahn WS (2004) Enhanced electrorheology of conducting polyaniline confined in MCM-41 channels. Langmuir 20:202–207CrossRef
36.
Zurück zum Zitat Pavlinek V, Saha P, Kitano T, Stejskal J, Quadrat O (2005) The effect of polyaniline layer deposited on silica particles on electrorheological and dielectric properties of their silicone-oil suspensions. Physica A 353:21–28CrossRef Pavlinek V, Saha P, Kitano T, Stejskal J, Quadrat O (2005) The effect of polyaniline layer deposited on silica particles on electrorheological and dielectric properties of their silicone-oil suspensions. Physica A 353:21–28CrossRef
Metadaten
Titel
Electrorheology of aniline oligomers
verfasst von
Miroslav Mrlik
Michal Sedlacik
Vladimir Pavlinek
Patrycja Bober
Miroslava Trchová
Jaroslav Stejskal
Petr Saha
Publikationsdatum
01.09.2013
Verlag
Springer Berlin Heidelberg
Erschienen in
Colloid and Polymer Science / Ausgabe 9/2013
Print ISSN: 0303-402X
Elektronische ISSN: 1435-1536
DOI
https://doi.org/10.1007/s00396-013-2947-4

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