Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
8153997 | Journal of Magnetism and Magnetic Materials | 2018 | 8 Pages |
Abstract
Orientation dependence of magnetoelectric coefficient αE33 in 1-3-type BaTiO3/CoFe2O4 composites was calculated in arbitrary directions by three-dimensional coordinate transformation method. The space distributions of pc11â², pc12â², e31â² for piezoelectric phase and mc11â², mc12â², q31â² for magnetic phase were obtained independently using relative experimental data and original matrices for 4mm BaTiO3 and m3m CoFe2O4. Elastic stiffness coefficients show little orientation differences, while e31â² and q31â² exhibit high dependence on crystal orientation, with the MAX absolute e31â²â¯=â¯2.96â¯C/m2 and the MAX q31â²â¯=â¯556â¯Ãâ¯10â12â¯m/A are found at θâ¯=â¯0° and θâ¯=â¯0°, Ïâ¯=â¯45°, respectively. For space distribution of αE33â², BaTiO3||[0 0 1]/CoFe2O4||[0 0 1] combination has the maximum value which applies to both 1-3 p/m (1.485â¯V/A) and 1-3 m/p composites (1.529â¯V/A). Volume fraction is quite independent of orientations of both piezoelectric and magnetic phases and the volume fraction for magnetic phase f around 0.5 obtains the largest αE33. The results suggest an approach to significantly enhancing magnetoelectric coefficient of composite multiferroic materials through crystal orientation controls of single crystals and textured ceramics.
Related Topics
Physical Sciences and Engineering
Physics and Astronomy
Condensed Matter Physics
Authors
Gang Jian, Hui Shao, Cheng Zhang, Chao Yan, Ning Zhao, Bo Song, C.P. Wong,