Morphology, structure, and conductivity of polypyrrole prepared in the presence of mixed surfactants in aqueous solutions

被引:49
作者
Xing, Shuangxi [1 ]
Zhao, Guoku [1 ]
机构
[1] NE Normal Univ, Fac Chem, Changchun 130024, Peoples R China
关键词
conducting polymers; morphology; polypyrroles; structure; surfactants;
D O I
10.1002/app.25912
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
Polypyrrole (PPy) was prepared from different mixed-surfactant solutions with ammonium persulfate as an oxidant. Three types of combinations were selected, including cationic/anionic, cationic/nonionic, and anionic/nonionic mixed-surfactant solutions. The surfactants used in the experiments included cetyltrimethylammonium bromide (cationic surfactant), sodium dodecyl sulfate (anionic surfactant), sodium dodecyl sulfonic acid salt (anionic surfactant), poly(vinyl pyrrolidone) (nonionic surfactant), and poly(ethylene glycol) (nonionic surfactant). The morphology, structure, and conductivity of the resulting PPy were investigated in detail with scanning electron microscopy, Fourier transform infrared spectra, and the typical four-probe method, respectively. The results showed that the interaction between the different surfactants and the interaction between the surfactants and the polymer influenced the morphology, structure, and conductivity of the resulting polymer to different degrees. The cationic surfactant favored the formation of nanofibers, the addition of anionic surfactants produced agglomeration but enhanced the doping level and conductivity, and the presence of a nonionic surfactant weakened the interaction between the other surfactant and the polymer in the system. In comparison with the results for monosurfactant solutions, the polymerization of pyrrole in mixed-surfactant solutions could modulate the morphologies of PPy, which ranged from nanofibers of different lengths to nanoparticles showing various states of aggregation. (c) 2007 Wiley Periodicals, Inc.
引用
收藏
页码:1987 / 1996
页数:10
相关论文
共 21 条
[1]   CONDUCTIVITY AS A FUNCTION OF CONJUGATION LENGTH - THEORY AND EXPERIMENT FOR CONDUCTING POLYMER COMPLEXES [J].
BAUGHMAN, RH ;
SHACKLETTE, LW .
PHYSICAL REVIEW B, 1989, 39 (09) :5872-5886
[2]   Polypyrrole nanowire actuators [J].
Berdichevsky, Y ;
Lo, YH .
ADVANCED MATERIALS, 2006, 18 (01) :122-125
[3]   Structural, mechanical, and electrical properties of electropolymerized polypyrrole composite films [J].
Bhat, NV ;
Gadre, AP ;
Bambole, VA .
JOURNAL OF APPLIED POLYMER SCIENCE, 2001, 80 (13) :2511-2517
[4]   Structure-conductivity relationships in chemical polypyrroles of low, medium and high conductivity [J].
Carrasco, PM ;
Grande, HJ ;
Cortazar, M ;
Alberdi, JM ;
Areizaga, J ;
Pomposo, JA .
SYNTHETIC METALS, 2006, 156 (5-6) :420-425
[5]   Adsorbed surfactants as templates for the synthesis of morphologically controlled polyaniline and polypyrrole nanostructures on flat surfaces: From spheres to wires to flat films [J].
Carswell, ADW ;
O'Rear, EA ;
Grady, BP .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2003, 125 (48) :14793-14800
[6]   Nanostructured polyaniline sensors [J].
Huang, J ;
Virji, S ;
Weiller, BH ;
Kaner, RB .
CHEMISTRY-A EUROPEAN JOURNAL, 2004, 10 (06) :1314-1319
[7]   Synthesis and characterization of water soluble polypyrrole doped with functional dopants [J].
Jang, KS ;
Lee, H ;
Moon, B .
SYNTHETIC METALS, 2004, 143 (03) :289-294
[8]   A novel conducting soluble polypyrrole composite with a polymeric co-dopant [J].
Lee, YH ;
Lee, JY ;
Lee, DS .
SYNTHETIC METALS, 2000, 114 (03) :347-353
[9]   Polypyrrole micro- and nanowires synthesized by electrochemical polymerization of pyrrole in the aqueous solutions of pyrenesulfonic acid [J].
Lu, GW ;
Li, C ;
Shi, GQ .
POLYMER, 2006, 47 (06) :1778-1784
[10]  
MacDiarmid AG, 2001, ANGEW CHEM INT EDIT, V40, P2581, DOI 10.1002/1521-3773(20010716)40:14<2581::AID-ANIE2581>3.0.CO