Colloidal, electrorheological, and viscoelastic properties of polypyrrole-graft-chitosan biodegradable copolymer

被引:20
作者
Cabuk, Mehmet [1 ]
Yavuz, Mustafa [1 ]
Unal, Halil Ibrahim [2 ]
机构
[1] Suleyman Demirel Univ, Dept Chem, Fac Sci, TR-32260 Isparta, Turkey
[2] Gazi Univ, Dept Chem, Fac Sci, Smart Mat Res Lab, Ankara, Turkey
关键词
Polypyrrole; chitosan; zeta-potential; electrorheological fluids; creep-recovery; SURFACE; SUSPENSIONS; PARTICLES; BEHAVIOR; FLUID; DERIVATIVES; PROTEIN; OIL; PH;
D O I
10.1177/1045389X15577652
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
In this study, colloidal, electrorheological, and viscoelastic properties of conducting polypyrrole, biodegradable chitosan, and polypyrrole-graft-chitosan copolymer were investigated. Some physical properties such as particle size, apparent density, conductivity, magnetic susceptibility, and elemental analysis of the materials were determined. Electrokinetic properties of the materials were investigated by means of zeta ()-potential measurements in aqueous and non-aqueous (silicone oil) media. The effects of time, pH, various electrolytes, surfactants, and temperature onto -potentials of the dispersions prepared in aqueous media were examined. It was concluded that the positive -potential of polypyrrole shifted to more positive regions, and the isoelectric point of the polypyrrole concomitantly shifted to higher pH values after interaction with polycationic chitosan matrix. Polypyrrole-graft-chitosan/silicone oil suspensions were observed to be electrorheological active when subjected to external electric field strength. Creep and creep-recovery tests were applied to the suspensions and a relationship was established between viscoelastic response and -potential of the materials. Furthermore, polypyrrole-graft-chitosan-based smart electrorheological fluid was observed to behave as a viscoelastic material and exhibited a reversible nonlinear viscoelastic deformation under externally applied electric field strength.
引用
收藏
页码:1799 / 1810
页数:12
相关论文
共 36 条
[1]  
Aoi K, 1997, MACROMOLECULES, V30, P6134, DOI 10.1021/ma970569t
[2]   Electrical and magnetic properties of chitosan-magnetite nanocomposites [J].
Bhatt, Aarti S. ;
Bhat, D. Krishna ;
Santosh, M. S. .
PHYSICA B-CONDENSED MATTER, 2010, 405 (08) :2078-2082
[3]   Synthesis, Characterization, and Enhanced Antibacterial Activity of Chitosan-Based Biodegradable Conducting Graft Copolymers [J].
Cabuk, Mehmet ;
Yavuz, Mustafa ;
Unal, Halil Ibrahim ;
Alan, Yusuf .
POLYMER COMPOSITES, 2015, 36 (03) :497-509
[4]   Synthesis, characterization and antimicrobial activity of biodegradable conducting polypyrrole-graft-chitosan copolymer [J].
Cabuk, Mehmet ;
Alan, Yusuf ;
Yavuz, Mustafa ;
Unal, Halil Ibrahim .
APPLIED SURFACE SCIENCE, 2014, 318 :168-175
[5]  
Chapman H. D., 2016, Agronomy Monographs, V9, P891, DOI [10.2134/agronmonogr9.2.c6, DOI 10.2134/AGRONMONOGR9.2.C6, 10.2134/AGRONMONOGR9.2.C6]
[6]   Shear stress analysis of a semiconducting polymer based electrorheological fluid system [J].
Cho, MS ;
Choi, HJ ;
Jhon, MS .
POLYMER, 2005, 46 (25) :11484-11488
[7]   Linear viscoelasticity of semiconducting polyaniline based electrorheological suspensions [J].
Cho, MS ;
Lee, JH ;
Choi, HJ ;
Ahn, KH ;
Lee, SJ ;
Jeon, D .
JOURNAL OF MATERIALS SCIENCE, 2004, 39 (04) :1377-1382
[8]   Creep and recovery behaviors of a polythiophene-based electrorheological fluid [J].
Chotpattananont, Datchanee ;
Sirivat, Anuvat ;
Jamieson, Alexander M. .
POLYMER, 2006, 47 (10) :3568-3575
[9]  
Dai TH, 2011, EXPERT REV ANTI-INFE, V9, P857, DOI [10.1586/eri.11.59, 10.1586/ERI.11.59]
[10]   Preparation, characterization and antibacterial properties against E-coli K88 of chitosan nanoparticle loaded copper ions [J].
Du, Wen-Li ;
Xu, Ying-Lei ;
Xu, Zi-Rong ;
Fan, Cheng-Li .
NANOTECHNOLOGY, 2008, 19 (08)