Room-temperature multiferroic (magnetoelectric–magnetodielectric) coupling properties of hybrid microwave-sintered (1 − x)BaZr0.25Ti0.75O3 − xCo0.9Ni0.1Fe2O4 lead-free electromagnetic composites

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作者
Sagar M. Mane
Aviraj M. Teli
Sonali A. Beknalkar
Nishant T. Tayade
Arjun N. Tarale
Pravin M. Tirmali
Shrinivas B. Kulkarni
Jae Cheol Shin
Jaewoong Lee
机构
[1] Yeungnam University,Department of Fiber System Engineering
[2] Dongguk University-Seoul,Division of Electronics and Electrical Engineering
[3] Maitreya,Department of Physics
[4] Modern School,Department of Physics, The Institute of Science
[5] Shri Shivaji Education Society Amravati’s,undefined
[6] Science College Pauni,undefined
[7] Dr. Homi Bhabha State University,undefined
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This paper reports on the systematic investigation of the room-temperature magnetoelectric and magnetodielectric coupling coefficients on adding ferromagnetic phase (xCo0.9Ni0.1Fe2O4, where x = 0.1, 0.2, 0.3, and 0.4) to the non-toxic lead-free ferroelectric phase (BaZr0.25Ti0.75O3) prepared via efficient, ultrafast, eco-friendly hybrid microwave sintering at 1100 °C. Rietveld’s refinement of the observed diffraction patterns reflects mixed-phase cubic and tetragonal crystal symmetries with space group Pm3m and P4mm for the ferroelectric phase and cubic Fd-3m for a ferromagnetic phase in each composite which was further verified through micro-Raman spectroscopy. Ferroelectric-ferrite composite at x = 0.2, i.e., 0.8(BaZr0.25Ti0.75O3) − 0.2(Co0.9Ni0.1Fe2O4), had highest magnetoelectric and magnetodielectric coupling coefficients αME=2.71mV/cmOe\documentclass[12pt]{minimal} \usepackage{amsmath} \usepackage{wasysym} \usepackage{amsfonts} \usepackage{amssymb} \usepackage{amsbsy} \usepackage{mathrsfs} \usepackage{upgreek} \setlength{\oddsidemargin}{-69pt} \begin{document}$${\alpha }_{\mathrm{ME}}= 2.71\mathrm{ mV}/\mathrm{cm Oe}$$\end{document} and MD (%) = 5.19 at 1 kHz applied frequency, respectively. The existence of both ferroelectric and magnetic phases in each composite was confirmed using P–E and M–H hysteresis loops, respectively. This study provides an efficient alternative approach for developing multiferroic composites for various technological applications.
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