Electrochemical synthesis of polyaniline in reverse microemulsion

Hai-hui Zhou , Chen-xu Fang , Ting-ting Ye , Ya-nan Wang , Yan Xu , Ning-shuang Zhang , Xiao-fang Ying , Ya-fei Kuang

Journal of Central South University ›› 2014, Vol. 21 ›› Issue (11) : 4071 -4075.

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Journal of Central South University ›› 2014, Vol. 21 ›› Issue (11) : 4071 -4075. DOI: 10.1007/s11771-014-2399-0
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Electrochemical synthesis of polyaniline in reverse microemulsion

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Abstract

The electro-polymerization behavior of aniline in reverse (W/O) microemulsion was investigated. The experiment results show that the cyclic voltammetry polymerization behavior of aniline in W/O microemulsion is different from that in aqueous solution remarkably. With the increase of scan cycle, the oxidation potential shifts positively and the reduction potential shifts negatively, i.e., the redox potential difference increases. H+ apparent concentration affects the aniline polymerization evidently. When H+ concentration is lower than 0.08 mol/L, the electro-polymerization of aniline is difficult. With the increase of H+ concentration, the polymerization current of aniline increases gradually. Only when H+ concentration is high enough (0.5 mol/L), aniline can be well electro-polymerized. Moreover, under the same condition, the aniline polymerization current in W/O microemulsion is higher than that in aqueous solution. The scanning electron microscopy image shows that the deposited polyaniline (PANI) has uniform fiber morphology with diameter of about 100 nm. Further study result suggests that the electrochemical activity of the PANI in HCl is similar to that of the PANI prepared in aqueous solution.

Keywords

polyaniline / reverse microemulsion / electro-polymerization / cyclic voltammetry

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Hai-hui Zhou, Chen-xu Fang, Ting-ting Ye, Ya-nan Wang, Yan Xu, Ning-shuang Zhang, Xiao-fang Ying, Ya-fei Kuang. Electrochemical synthesis of polyaniline in reverse microemulsion. Journal of Central South University, 2014, 21(11): 4071-4075 DOI:10.1007/s11771-014-2399-0

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References

[1]

HeinzeJ, Frontana-UribeB A, LudwigsS. Electrochemistry of conducting polymers persistent models and new concepts [J]. Chemical Reviews, 2010, 110: 4724-4771

[2]

HuX, LiuH, ZouG-lin. Iron (II) tetrasulfophthalocyanine mimetic enzymatic synthesis of conducting polyaniline in micellar system [J]. Journal of Central South University of Technology, 2009, 16(5): 743-748

[3]

SevillaM, Valle VigónP, FuertesA B. N-doped polypyrrole-based porous carbons for CO2 capture [J]. Advanced Functional Materials, 2011, 21(14): 2781-2787

[4]

RokovićM K, PeršiB, MandićZ. Electrochemical synthesis of polyaniline from aniline/cyclodextrin solutions [J]. Journal of Electroanalytical Chemistry, 2010, 643(1/2): 46-51

[5]

LiG-r, FengZ-p, ZhongJ-h, WangZ-l, TongY-xiang. Electrochemical synthesis of polyaniline nanobelts with predominant electrochemical performances [J]. Macromolecules, 2010, 43(5): 2178-2183

[6]

ThiemannC, BrettC M A. Electropolymerisation and properties of conducting polymers derived from aminobenzenesulphonic acids and from mixtures with aniline [J]. Synthetic Metals, 2001, 125(3): 445-451

[7]

BrettC M A, ThiemannC. Conducting polymers from aminobenzoic acids and aminobenzenesulphonic acids: Influence of pH on electrochemical behavior [J]. Journal of Electroanalytical Chemistry, 2002, 538/539: 215-222

[8]

ZhouH-h, PengC-y, JiaoS-q, ZengW, ChenJ-h, KuangY-fei. Electrodeposition of nanoscaled nickel in a reverse microemulsion [J]. Electrochemistry Communications, 2006, 8(7): 1142-1146

[9]

ZhouH-h, PengC-y, FuC-p, AnJ, ZouH, WangY-d, XuY, KuangY-fei. Preparation of Ni nanoparticles plating by electrodeposition using reverse microemulsion as template [J]. Journal of Central South University of Technology, 2010, 17(1): 40-44

[10]

ZhouQ, WangJ-w, MaY-l, CongC-b, WangFang. The relationship of conductivity to the morphology and crystallinity of polyaniline controlled by water content via reverse microemulsion [J]. Colloid and Polymer Science, 2007, 285(4): 405-411

[11]

ZarurA J, YingJ Y. Reverse microemulsion synthesis of nanostructured complex oxides for catalytic combustion [J]. Nature, 2000, 403: 65-67

[12]

PengC-y, ZhouH-h, ZengW, JiaoS-q, LuoS-l, KuangY-fei. Studies on the conductivity of reverse microemulsion [J]. Acta Physico-Chimica Sinica, 2006, 22(4): 409-413

[13]

ZengW, ZhouH-h, YingX-f, ZengQ-l, HuW-y, KuangY-fei. Electrodeposition of gold nanoparticles coatings from electrode/reverse microemulsion system [J]. Acta Physico-Chimica Sinica, 2007, 2305: 769-773

[14]

HanD H, ParkS M. Electrochemistry of conductive polymers. 32. Nanoscopic examination of conductivities of polyaniline films [J]. Journal of Physical Chemistry B, 2004, 108(37): 13921-13927

[15]

HongS Y, ParkS M. Electrochemistry of conductive polymers 36. pH dependence of polyaniline conductivities studied by current-sensing atomic force microscopy [J]. Journal of Physical Chemistry B, 2005, 109(19): 9305-9310

[16]

ZhouH-h, JiaoS-q, ChenJ-h, WeiW-z, KuangY-fei. Relationship between preparation conditions, morphology and electrochemical properties of polyaniline prepared by pulse galvanostatic method (PGM) [J]. Thin solid films, 2004, 450(2): 233-239

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