Header menu link for other important links
X
Pine-cone morphology and pseudocapacitive behavior of nanoporous nickel oxide
Published in
2010
Volume: 55
   
Issue: 28
Pages: 8388 - 8396
Abstract
Nanoporous pine-cone structured NiO powder was prepared by hydrothermally heated homogeneous precipitation method using cetyltrimethylammonium bromide surfactant (CTAB) as a template and urea as hydrolysis controlling agent. The NiO powder sample was characterized by thermogravimetric analysis (TGA), powder X-ray diffraction (PXRD), Brunauer-Emmet-Teller (BET) isotherm, scanning electron microscopy (SEM) and electrochemical measurements. The prepared NiO was found to be crystalline and highly porous in nature with high specific surface area and pore volume. The pseudocapacitance behavior of this material was investigated using cyclic voltammetry, chronopotentiometry and impedance spectroscopic studies employing a three-electrode system in the single cell mode. The SEM analysis reveals hierarchically porous pine-cone morphology for NiO which shows good specific capacitance (∼337 F g-1) measured by cyclic voltammetry. The galvanostatic charge-discharge cycles obtained in chronopotentiometric measurements indicate that the NiO sample exhibits good electrochemical stability. The columbic efficiency of NiO was found to be about 99% after 100 galvanostatic charge-discharge cycles. The impedance spectroscopic studies confirmed that the pseudocapacitance behavior of the porous NiO was a result of OH- ion diffusion processes in the system. In this study, a correlation has been made between the specific capacitance values and physicochemical properties as well as the unique surface morphology of NiO. © 2010 Elsevier Ltd All rights reserved.
About the journal
JournalElectrochimica Acta
ISSN00134686
Open AccessNo
Concepts (48)
  •  related image
    BRUNAUER EMMET TELLERS
  •  related image
    CETYL TRIMETHYL AMMONIUM BROMIDES
  •  related image
    CHRONOPOTENTIOMETRY
  •  related image
    COLUMBIC EFFICIENCY
  •  related image
    CONTROLLING AGENT
  •  related image
    ELECTROCHEMICAL MEASUREMENTS
  •  related image
    Electrochemical stabilities
  •  related image
    GALVANOSTATIC CHARGES
  •  related image
    High specific surface area
  •  related image
    HOMOGENEOUS PRECIPITATION METHOD
  •  related image
    Hydrothermal methods
  •  related image
    Hydrothermally
  •  related image
    ION DIFFUSION
  •  related image
    Nano-porous
  •  related image
    NIO POWDER
  •  related image
    Physicochemical property
  •  related image
    PINE-CONE MORPHOLOGY
  •  related image
    Pore volume
  •  related image
    POROUS NIO
  •  related image
    POWDER X-RAY DIFFRACTION (PXRD)
  •  related image
    PSEUDOCAPACITANCE
  •  related image
    PSEUDOCAPACITIVE BEHAVIOR
  •  related image
    SEM
  •  related image
    SEM ANALYSIS
  •  related image
    Single cells
  •  related image
    Specific capacitance
  •  related image
    Spectroscopic studies
  •  related image
    Super capacitor
  •  related image
    THREE ELECTRODE-SYSTEM
  •  related image
    AMMONIUM COMPOUNDS
  •  related image
    Bromine compounds
  •  related image
    Capacitance
  •  related image
    Capacitors
  •  related image
    Electric discharges
  •  related image
    Electrochemical electrodes
  •  related image
    Electrochemical properties
  •  related image
    Lithium compounds
  •  related image
    Morphology
  •  related image
    Nickel oxide
  •  related image
    Precipitation (chemical)
  •  related image
    Scanning electron microscopy
  •  related image
    Spectroscopic analysis
  •  related image
    Surface active agents
  •  related image
    Thermogravimetric analysis
  •  related image
    Urea
  •  related image
    X ray diffraction
  •  related image
    X ray diffraction analysis
  •  related image
    Cyclic voltammetry