Title :
Structural, dielectric, ferroelectric and magnetic properties of (x) CoFe2O4-(1-x) BaTiO3 composite
Author :
Manjusha ; Rawat, Meera ; Yadav, K.L.
Author_Institution :
Dept. of Phys., Indian Inst. of Technol., Roorkee, Roorkee, India
Abstract :
Composites of (x) CoFe2O4-(1-x) BaTiO3 (for x = 0, 0.30, 0.40, 0.50) synthesized via solid state reaction method are reported. Structural analysis was carried out by X-ray diffraction analysis which confirms the formation of the hybrid composites with spinel phase and tetragonal phase. FESEM micrographs show closely packed microstructure with grain sizes varying in the range of 480 nm680 nm. Variation of dielectric constant with temperature at three fixed frequencies (1 kHz, 50 kHz and 100 kHz) was studied and it was found that the value of dielectric constant increases with an increase in the ferrite content. In ferroelectric study the values of coercive field (2Ec) increased with increasing ferrite content. The magnetic properties such as saturation magnetization (Ms) and magnetic moment (μB) calculated from the magnetic hysteresis loops are found to increase with an increase in ferrite content. The magnetoelectric effect of ferroelectric/ferrite composites was studied using magnetocapacitance which gives maximum value for 50 mol% addition of ferrite.
Keywords :
X-ray diffraction; barium compounds; cobalt compounds; coercive force; composite materials; crystal growth; crystal structure; ferroelectricity; field emission electron microscopy; grain size; magnetic hysteresis; magnetic moments; magnetoelectric effects; permittivity; scanning electron microscopy; CoFe2O4-BaTiO3; FESEM; X-ray diffraction; closely packed microstructure; coercive field; dielectric constant; dielectric properties; ferrite content; ferroelectric properties; ferroelectric-ferrite composites; grain sizes; hybrid composites; magnetic hysteresis loops; magnetic moment; magnetic properties; magnetocapacitance; magnetoelectric effect; saturation magnetization; solid state reaction method; spinel phase; structural properties; tetragonal phase; Dielectric constant; Ferrites; Magnetic hysteresis; Magnetoelectric effects; Magnetostriction; Saturation magnetization; Dielectric; ferroelectric materials; hybrid composites; magneto capacitance;
Journal_Title :
Dielectrics and Electrical Insulation, IEEE Transactions on
DOI :
10.1109/TDEI.2015.7116338