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Design and Synthesis of an Artificial Perpendicular Hard Ferrimagnet with High Thermal and Magnetic Field Stabilities

机译:具有高热和磁场稳定性的人造垂直硬铁氧体的设计与合成

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摘要

It is of great fundamental and practical interest to develop effective means of modulating the magnetic hystereses of magnetic materials and their heterostructures. A notable example is the exchange bias (EB) effect between an antiferromagnet or ferrimagnet and a ferromagnet, which has been widely employed to manipulate magnetic anisotropy in spintronic devices and artificial magnets. Here, we report the design, synthesis and characterization of a synthetic perpendicularly-magnetized ferrimagnet based on [Mn2.9Ga/Co2MnSi]n superlattices, which attains thermal stability above 400 K and a coercive field up to 45 kOe through a mechanism of magnetic compensation. The structure is incorporated into a prototype Heusler alloy and MgO barrier based magnetic tunnel junction, which demonstrates high dynamic range linear field responses and an unusual in-plane EB effect. With increasing temperature, the coercive field reaches beyond 70 kOe at 400 K in this device due to the increasing degree of magnetic moment compensation in the superlattice. The results demonstrate that the compensation mechanism can be utilized to achieve simultaneous thermal robustness and high coercivity in realistic spintronic devices.
机译:开发调制磁性材料的磁滞和其异质结构的有效手段具有重大的基础和实践意义。一个明显的例子是反铁磁体或亚铁磁体与铁磁体之间的交换偏置(EB)效应,该效应已被广泛用于控制自旋电子器件和人造磁体中的磁各向异性。在这里,我们报告基于[Mn2.9Ga / Co2MnSi] n超晶格的合成垂直磁化铁氧体的设计,合成和表征,该超晶格通过磁补偿机制获得高于400 aboveK的热稳定性和高达45 kOe的矫顽场。该结构被整合到原型Heusler合金和基于MgO势垒的磁性隧道结中,该结点显示出高动态范围线性场响应和不寻常的面内EB效应。随着温度的升高,由于超晶格中磁矩补偿的程度增加,该装置中的矫顽场在400 K时达到70 kOe以上。结果表明,该补偿机制可用于在实际的自旋电子器件中同时实现热稳定性和高矫顽力。

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