Synthesis,characterization, dielectric and rectification properties of PANI/Nd2O3:Al2O3 nanocomposites |
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Authors: | Juhi Nishat Ansari Syed Khasim Ameena Parveen Omar A Al‐Hartomy Ziad Khattari Nacer Badi Aashis. S. Roy |
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Affiliation: | 1. Department of Electronics and Communication Engineering, K.C.T Engineering College, Gulbarga, Karnataka, India;2. Department of Physics, University of Tabuk, Tabuk, Kingdom of Saudi Arabia;3. Department of Physics, PESIT‐BSC, Bangalore, India;4. Department of Physics, Government First Grade College, Guirmtkal, India;5. Department of Physics, Faculty of Science, King Abdul Aziz University, Jeddah, Saudi Arabia;6. Department of Physics, Hashemite University, Zarqa, Jordan;7. Center for Advanced Materials, University of Houston, Houston, TX, USA;8. Department of Engineering Chemistry, K.B.N College of Engineering, Gulbarga, Karnataka, India |
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Abstract: | Polyaniline–Nd2O3:Al2O3 nanocomposites were prepared by in situ oxidative polymerization method using different weight percentages of oxide powders. The prepared nanocomposites were characterized by Fourier transform infrared spectroscopy and X‐ray diffraction for molecular and crystal structures. Scanning electron microscopy and transmission electron microscopy images show the tubular structure of polyaniline nanocomposite with embedded metal oxides. The electrical conductivity of the nanocomposites increases with increase in temperature as well as with concentration of Nd2O3:Al2O3 particles in polyaniline. This is because of the hopping of charge polarons and extended chain length of the nanocomposites as evidenced by the negative thermal coefficient (NTC) characteristic. A high NTC value of 2.67 was found in nanocomposites with 15 wt% of oxide particles. These nanocomposites show low dielectric constant and dielectric loss; the electrical conductivity is higher than 0.3 S/cm as confirmed by Cole–Cole plot that indicates a decrease in both grain resistance and bulk resistance of the nanocomposites. The current–voltage and capacitance–voltage measurements were also carried out. The carrier mobility μ values of pure polyaniline and nanocomposites were found to be 4.27 × 10?3 and 1.45 × 10–2 H.M?1, respectively. A significant enhancement in carrier mobility was observed in comparison with the literature. Copyright © 2016 John Wiley & Sons, Ltd. |
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Keywords: | polymer matrix composites rectification properties surface properties electron microscopy thermal analysis |
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