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First principles study of magnetoelectric coupling in Co2FeAl/BaTiO3 tunnel junctions

机译:Co2FeAl / BaTiO3隧道结中磁电耦合的第一原理研究

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Critical thickness for ferroelectricity and the magnetoelectric effect of Co2FeAl/BaTiO3 multiferroic tunnel junctions (MFTJs) are investigated using first-principles calculations. The ferroelectric polarization of the barriers can be maintained upto a critical thickness of 1.7 nm for both the Co-2/TiO2 and FeAl/TiO2 interfaces. The magnetoelectric effect is derived from the difference in the magnetic moments on interfacial atoms, which is sensitive to the reversal of electric polarization. The magnetoelectric coupling is found to be dependent on the interfacial electronic hybridizations. Compared with the Co-2/TiO2 interface, more net magnetization change is achieved at the FeAl/TiO2 interface. In addition, the in-plane strain effect shows that in-plane compressive strain can lead to the enhancement of ferroelectric polarization stability and intensity of magnetoelectric coupling. These findings suggest that Co2FeAl/BaTiO3 MFTJs could be utilized in the area of electrically controlled magnetism, especially the MFTJ with loaded in-plane compressive strain with the FeAl/TiO2 interface.
机译:使用第一性原理计算研究了铁电的临界厚度和Co2FeAl / BaTiO3多铁隧道结(MFTJs)的磁电效应。对于Co-2 / TiO2和FeAl / TiO2界面,势垒的铁电极化都可以保持到1.7 nm的临界厚度。磁电效应源自界面原子上磁矩的差异,该差异对极性的反转很敏感。发现磁电耦合取决于界面电子杂交。与Co-2 / TiO2界面相比,FeAl / TiO2界面实现了更多的净磁化强度变化。另外,面内应变效应表明面内压缩应变可以导致铁电极化稳定性和磁电耦合强度的增强。这些发现表明,Co2FeAl / BaTiO3 MFTJ可以用于电控磁性领域,尤其是在具有FeAl / TiO2界面的面内压缩应变的MFTJ中。

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