4.6 Article

High-Performance Pseudocapacitor Electrodes Based on alpha-Fe2O3/MnO2 Core-Shell Nanowire Heterostructure Arrays

期刊

JOURNAL OF PHYSICAL CHEMISTRY C
卷 117, 期 30, 页码 15523-15531

出版社

AMER CHEMICAL SOC
DOI: 10.1021/jp4039573

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资金

  1. Board of Research in Nuclear Sciences (BRNS), Government of India [2009/37/16/BRNS]
  2. Council of Scientific and Industrial Research (CSIR), Government of India
  3. Department of Science and Technology (DST), Government of India [IFA12-ENG-09]

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A simple wet chemical technique has been employed to fabricate MnO2 nanolayer-coated alpha-Fe2O3/MnO2 core shell nanowire heterostructure arrays to prepare unique pseudocapacitor electrodes. The coating of MnO2 on alpha-Fe2O3 nanowires is triggered by the reduction of KIVIn04 solutions by the metallic (Au) film on which the polycrystalline alpha-Fe2O3 nanowires have been grown electrochemically. This metallic film also acts as the current collector by making direct contact with the arrays of the ID nanoheterostructures. The asprepared alpha-Fe2O3/MnO2 nanoheterostructures are found to exhibit excellent specific capacitance, high energy density, high power density, and long-term cyclic stability as compared with the bare alpha-Fe2O3 nanowire electrodes. The unique geometry of the ID nanoheterostmctures with high effective surface area to allow faster redox reaction kinetics, the incorporation of two highly redox active materials in the same structure, and the porous surface structures of the heterostructure to allow facile electrolyte diffusion help in the superior electrochemical performance of the alpha-Fe2O3/MnO2 nanoheterostructures. The maximum specific capacitance of 838 F (based on pristine MnO2) has been achieved by cyclic voltammetry at a scan rate of 2 mV s(-1) in 1 M KOH aqueous solution. The hybrid alpha-Fe2O3/MnO2 nanocomposite electrodes also exhibit good rate capability with excellent specific energy density of 17 Wh kg(-1) and specific power density of 30.6 kW kg(-1) at a current density of 50 A g(-1) and good long-term cycling stability (only 1.5% loss of its initial specific capacitance after 1000 cycles). These studies indicate that the alpha-Fe2O3/MnO2 nanoheterostructure architecture is very promising for next-generation high-performance pseudo capacitors.

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