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Fabrication of polyaniline nanowire/TiO2 nanotube array electrode for supercapacitors

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  • Shao, Zhou
  • Li, Hongji
  • Li, Mingji
  • Li, Cuiping
  • Qu, Changqing
  • Yang, Baohe

Abstract

A per literature study, work of PANI (polyaniline) nanowire/TiO2 nanotube arrays with highly porous structures and good capacitive characteristics are not prepared by electrochemical methods. The authors have described the TiO2 nanotube arrays which are fabricated by simple anodization of Ti sheet in ammonium fluoride/glycerol solution. PANI nanowires were deposited on the TiO2 nanotube layer by electro-polymerization. TiO2 nanotube layer to promote the formation of a concentration gradient of aniline monomer, and thus indirectly played a role in the dynamic template. Structural and morphological characterizations indicate that the PANI nanowires and TiO2 nanotubes have diameters of 200–300 nm and 60–100 nm, respectively. The intricate cooperation of the two materials enables the supercapacitor to work in a widened 1.2-V potential window. The specific capacitance of these electrodes is around 897.35 F g−1 at a current density of 0.21 A g−1 in 0.05 M H2SO4. The modified electrodes also show high cycling stability and maintain 86.2% of the initial capacity after 1500 cycles. The coexistence of mesopores, nanowires, and nanotubes favors the fast penetration of the electrolyte, facilitates ion diffusion, and shortens the charge transfer distance, all of which lead to the superior electrochemical performance of PANI nanowire/TiO2 nanotube arrays.

Suggested Citation

  • Shao, Zhou & Li, Hongji & Li, Mingji & Li, Cuiping & Qu, Changqing & Yang, Baohe, 2015. "Fabrication of polyaniline nanowire/TiO2 nanotube array electrode for supercapacitors," Energy, Elsevier, vol. 87(C), pages 578-585.
  • Handle: RePEc:eee:energy:v:87:y:2015:i:c:p:578-585
    DOI: 10.1016/j.energy.2015.05.025
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    References listed on IDEAS

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    1. Lee, Seul-Yi & Kim, Ji-Il & Park, Soo-Jin, 2014. "Activated carbon nanotubes/polyaniline composites as supercapacitor electrodes," Energy, Elsevier, vol. 78(C), pages 298-303.
    2. Pang, Haidong & Yang, Zunxian & Lv, Jun & Yan, Wenhuan & Guo, Tailiang, 2014. "Novel MnOx@Carbon hybrid nanowires with core/shell architecture as highly reversible anode materials for lithium ion batteries," Energy, Elsevier, vol. 69(C), pages 392-398.
    3. Wang, Kai & Li, Liwei & Zhang, Tiezhu & Liu, Zaifei, 2014. "Nitrogen-doped graphene for supercapacitor with long-term electrochemical stability," Energy, Elsevier, vol. 70(C), pages 612-617.
    4. Kim, Jongmin & Ju, Haeri & Inamdar, Akbar I. & Jo, Yongcheol & Han, J. & Kim, Hyungsang & Im, Hyunsik, 2014. "Synthesis and enhanced electrochemical supercapacitor properties of Ag–MnO2–polyaniline nanocomposite electrodes," Energy, Elsevier, vol. 70(C), pages 473-477.
    5. Li, Zijiong & Liu, Ping & Yun, Gaoqian & Shi, Kai & Lv, Xiaowei & Li, Kun & Xing, Jianhua & Yang, Baocheng, 2014. "3D (Three-dimensional) sandwich-structured of ZnO (zinc oxide)/rGO (reduced graphene oxide)/ZnO for high performance supercapacitors," Energy, Elsevier, vol. 69(C), pages 266-271.
    6. Jagadale, Ajay D. & Kumbhar, Vijay S. & Bulakhe, Ravindra N. & Lokhande, Chandrakant D., 2014. "Influence of electrodeposition modes on the supercapacitive performance of Co3O4 electrodes," Energy, Elsevier, vol. 64(C), pages 234-241.
    7. Singh, Manoj K. & Suleman, Mohd & Kumar, Yogesh & Hashmi, S.A., 2015. "A novel configuration of electrical double layer capacitor with plastic crystal based gel polymer electrolyte and graphene nano-platelets as electrodes: A high rate performance," Energy, Elsevier, vol. 80(C), pages 465-473.
    8. Ju, Jianfeng & Chen, Xi & Shi, Yujun & Wu, Donghui & Hua, Ping, 2013. "A novel TiO2 nanofiber supported PdAg catalyst for methanol electro-oxidation," Energy, Elsevier, vol. 59(C), pages 478-483.
    9. Wang, Hongqiang & Li, Sha & Li, Dan & Chen, Zhixin & Liu, Hua Kun & Guo, Zaiping, 2014. "TiO2 coated three-dimensional hierarchically ordered porous sulfur electrode for the lithium/sulfur rechargeable batteries," Energy, Elsevier, vol. 75(C), pages 597-602.
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    6. Miao, Fujun & Shao, Changlu & Li, Xinghua & Lu, Na & Wang, Kexin & Zhang, Xin & Liu, Yichun, 2016. "Polyaniline-coated electrospun carbon nanofibers with high mass loading and enhanced capacitive performance as freestanding electrodes for flexible solid-state supercapacitors," Energy, Elsevier, vol. 95(C), pages 233-241.
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