Water-soluble polyaniline/graphene composites as materials for energy storage applications

被引:29
|
作者
Solonaru, A. M. [1 ]
Grigoras, M. [1 ]
机构
[1] P Poni Inst Macromol Chem, Electroact Polymers Dept, 41A Gr Ghica Voda Alley, Iasi 700487, Romania
来源
EXPRESS POLYMER LETTERS | 2017年 / 11卷 / 02期
关键词
polymer composites; poly(aniline-N-propane sulfonic acid); reduced graphene oxide; supercapacitors; SUPERCAPACITOR ELECTRODES; SULFONATED POLYANILINE; NANOFIBER COMPOSITES; GRAFT COPOLYMER; SOLAR-CELLS; GRAPHENE; POLYMERIZATION; PERFORMANCE; NANOCOMPOSITES; NANOSHEETS;
D O I
10.3144/expresspolymlett.2017.14
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
Three water-dispersable composites have been synthesized by in situ chemical oxidative polymerization of aniline N-propanesulfonic acid (AnS) in reduced graphene oxide (r-GO) dispersion, in an ice bath at 0 degrees C and in the absence of any surfactant. The mass ratio between r-GO and aniline monomer have been established as (m(r-GO):m(AnS)) = 1:1, 1:2 and 1:5 while in the composites, the mass ratio between r-GO and polyaniline was found: 1:0.3, 1:0.5 and 1:1, respectively. The molecular structure, morphology, and optical properties of the composites were analyzed through Fourier transform infrared (FTIR), Raman and ultraviolet-visible (UV-Vis) spectroscopy, X-ray diffraction (XRD), and scanning electron microscopy (SEM). Electrochemical performances for energy storage were evaluated by cyclic voltammetry and galvanostatic charge/discharge measurements with 1M H2SO4 as electrolyte in a three-electrode cell. The composite with the mass ratio (m(r-GO):m(PAnS)) = 1:1 has showed good capacitive behavior with a specific capacitance of 1019 F/g at scan rate of 1 mV/s calculated from integrated area of cyclic voltammogram curve and a retention life of 80% after 100 cycles. These results indicate that the composites prepared by chemical oxidative polymerization are promising materials for electrode supercapacitors.
引用
收藏
页码:127 / 139
页数:13
相关论文
共 50 条
  • [21] Preparation of water-soluble and biocompatible graphene
    Hu, Xiaohong
    Ma, Xiaohan
    Tan, Huaping
    Li, Dan
    MICRO & NANO LETTERS, 2013, 8 (06) : 277 - 279
  • [22] Nanostructured porous graphene and its composites for energy storage applications
    Ferrer, Pablo Ramos
    Mace, Annsley
    Thomas, Samantha N.
    Jeon, Ju-Won
    NANO CONVERGENCE, 2017, 4
  • [23] Nanostructured porous graphene and its composites for energy storage applications
    Pablo Ramos Ferrer
    Annsley Mace
    Samantha N. Thomas
    Ju-Won Jeon
    Nano Convergence, 4
  • [24] Research progress on preparation methods of water-soluble polyaniline
    Xiao, Yuansong
    Wang, Yanmin
    Wu, Xueliang
    Ma, Yong
    HIGH PERFORMANCE POLYMERS, 2023, 35 (03) : 213 - 227
  • [25] Matrix Synthesis of Water-Soluble Polyaniline in the Presence of Polyelectrolytes
    Boeva, Zh. A.
    Pyshkina, O. A.
    Lezov, A. A.
    Polushina, G. E.
    Lezov, A. V.
    Sergeyev, V. G.
    POLYMER SCIENCE SERIES C, 2010, 52 (01) : 35 - 43
  • [26] Synthesis of water-soluble conductive copolymer based on polyaniline
    Heydari, Masoumeh
    Moghadam, Peyman Najafi
    Fareghi, Amir Reza
    Bahram, Morteza
    Movagharnezhad, Nasim
    POLYMERS FOR ADVANCED TECHNOLOGIES, 2015, 26 (03) : 250 - 254
  • [27] Potentiostatic synthesis of polyaniline zinc and iron oxide composites for energy storage applications
    Khan, Imran
    Shah, Anwar ul Haq Ali
    Bilal, Salma
    Roese, Philipp
    SYNTHETIC METALS, 2025, 310
  • [28] Rubber modified water-soluble polyaniline latex.
    Kuo, CS
    Chiang, LY
    Kumar, J
    Samuelson, L
    Tripathy, SK
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2000, 220 : U281 - U281
  • [29] Cationic metalloporphyrins for synthesis of conducting, water-soluble polyaniline
    Nabid, Mohammad Reza
    Zamiraei, Zahra
    Sedghi, Roya
    Safari, Nasser
    REACTIVE & FUNCTIONAL POLYMERS, 2009, 69 (05): : 319 - 324
  • [30] Matrix synthesis of water-soluble polyaniline in the presence of polyelectrolytes
    Zh. A. Boeva
    O. A. Pyshkina
    A. A. Lezov
    G. E. Polushina
    A. V. Lezov
    V. G. Sergeyev
    Polymer Science Series C, 2010, 52 : 35 - 43