期刊文献+

由苯胺二聚体电化学制备聚苯胺的形貌可控性初探

Preliminary Study on Morphology Controllability of Electrochemically Prepared Polyaniline by Using Aniline Aimer
在线阅读 下载PDF
导出
摘要 以苯胺二聚体(N-phenyl-p-phenylenediamine)为起始单体,在1 mol·L-1高氯酸水-乙腈混合液中,玻碳电极表面电化学制备聚苯胺.实验结果表明,苯胺二聚体单体的聚合电位比苯胺单体的低约0.2 V,并且其聚合物具有更高的形貌可控性.苯胺二聚体单体浓度分别为1、5和10 mmol·L-1时,采用分步恒电流法可分别制备出形貌均一的聚苯胺纳米粒子(粒径30 nm)、超长的纳米线(>5μm直径50 nm)和大面积纳米片(4μm×2μm×30 nm). Employing of aniline dimer (N-phenyl-p-phenylenediamine, NPD) as the starting monomer, polyaniline was electrochemically synthesized on the surface of glassy carbon electrode in acetonitrile-aqueous mixing solutions (20%, by volume) containing 1 mol .L^-1 HC104. Experimental results demonstrated that the polymerization of NPD occurs at the potentials about 0.2 V lower than those of aniline monomer. Furthermore, the resulting polyaniline has higher morphology controllability than those synthesized by using aniline as the stating monomer. The uniform polyaniline nanoparticles (30 nm in diameter), ultralong nanowires (length 〉 5 μm, 50 nm in diameter) or large area nanosheets (4 μm in length, 2 μm in height, 30 nm in thickness) can be prepared by using step-wise galvanostatic method when the concentrations of NPD monomer was 1.5 or 10 mmol. L-1. resnectivelv.
作者 左阳 时康
出处 《电化学》 CAS CSCD 北大核心 2014年第1期17-21,共5页 Journal of Electrochemistry
基金 国家自然科学基金项目(No.91023043 No.21021002)资助
关键词 π共轭有机导电聚合物 聚苯胺 单体 电化学聚合 均一形貌 π-conjugated type of organic conducting polymer polyaniline monomer electrochemical polymerization uniform morphology
作者简介 (86-592)2181248,E-mail:kshi@xlnu.edu.cn
  • 相关文献

参考文献2

二级参考文献15

  • 1Hu L B, Gruner G, Li D, et al. Patternable transparent carbon nanotube films for electrochromic devices [J]. Journal of Applied Physics, 2007, 101(1): 016102.
  • 2Tseng R J, Huang J X, Ouyang J Y, et al. Polyaniline nanofiber/gold nanoparticle nonvolatile memory [J]. Nano Letters, 2005, 5(6): 1077-1080.
  • 3Liu F J, Huang L M, Wen T C, et al. Composite electrodes eonsisting of platinum particles and polyaniline nanowires as electrocatalysts for methanol oxidation [J]. Polymer Composites, 2007, 28(5): 650-656.
  • 4Xu J J, Wang K, Zu S Z, et al. Hierarchical nanocomposites of polyaniline nanowire arrays on graphene oxide sheets with synergistic effect for energy storage [J]. ACS Nano, 2010, 4(9): 5019-5026.
  • 5Varela H, Bruno R L, Torreesi R M. Ionic transport in conducting polymers nickel tetrasulfonated phthalocyanine modified electrodes [J]. Polymer, 2003, 44(18): 5369-5379.
  • 6Wang J, Torardi C C, Duch M W. Polyaniline-related ion-barrier anticorrosion coatings: II. Protection behavior of polyaniline, cationic, and bipolar films [J]. Synthetic Metals, 2007, 157(21): 851-858.
  • 7Forzani E S, Zhang H Q, Nagahara L A. et al. Conducting polymer nanojunction sensor for glucose detection [J]. Nano Letters, 2004, 4(9): 1785-1788.
  • 8Zhao M, Wu X M, Cai C X. Polyaniline nanofibers: Synthesis, characterization, and application to direct electron transfer of glucose oxidase [J]. The Journal of Physical Chemistry C, 2009, 113(12): 4987-4996.
  • 9Wang Z Y, Liu S N, Wu P, et al. Detection of glucose based on direct electron transfer reaction of glucose oxidase immobilized on highly ordered polyaniline nanotubes [J]. Analytical Chemistry, 2009, 81(4): 1638-1645.
  • 10Liu J, Lin Y H, Liang L, et al. Templateless assembly of molecularly aligned conductive polymer nanowires: A new approach for oriented nanostructures [J]. Chemistry - A European Journal, 2003, 9(3): 604-611.

共引文献6

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部