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首页> 外文期刊>Scientific reports. >Thermally induced magnetization switching in Fe/MnAs/GaAs(001): selectable magnetic configurations by temperature and field control
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Thermally induced magnetization switching in Fe/MnAs/GaAs(001): selectable magnetic configurations by temperature and field control

机译:Fe / MnAs / GaAs(001)中的热感应磁化切换:通过温度和磁场控制可选择磁配置

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摘要

Spintronic devices currently rely on magnetization control by external magnetic fields or spin-polarized currents. Developing temperature-driven magnetization control has potential for achieving enhanced device functionalities. Recently, there has been much interest in thermally induced magnetisation switching (TIMS), where the temperature control of intrinsic material properties drives a deterministic switching without applying external fields. TIMS, mainly investigated in rare-earth–transition-metal ferrimagnets, has also been observed in epitaxial Fe/MnAs/GaAs(001), where it stems from a completely different physical mechanism. In Fe/MnAs temperature actually modifies the surface dipolar fields associated with the MnAs magnetic microstructure. This in turn determines the effective magnetic field acting on the Fe overlayer. In this way one can reverse the Fe magnetization direction by performing thermal cycles at ambient temperatures. Here we use element selective magnetization measurements to demonstrate that various magnetic configurations of the Fe/MnAs/GaAs(001) system are stabilized predictably by acting on the thermal cycle parameters and on the presence of a bias field. We show in particular that the maximum temperature reached during the cycle affects the final magnetic configuration. Our findings show that applications are possible for fast magnetization switching, where local temperature changes are induced by laser excitations.
机译:自旋电子器件当前依赖于通过外部磁场或自旋极化电流进行的磁化控制。发展温度驱动的磁化控制具有实现增强的器件功能的潜力。近年来,人们对热感应磁化开关(TIMS)产生了极大的兴趣,其中固有材料特性的温度控制驱动确定性开关而无需施加外部磁场。 TIMS主要在稀土-过渡金属亚铁中进行了研究,在外延Fe / MnAs / GaAs(001)中也观察到了TIMS,其起源完全不同。在Fe / MnAs中,温度实际上会改变与MnAs磁性微观结构相关的表面偶极场。这进而确定了作用在Fe覆盖层上的有效磁场。这样,可以通过在环境温度下执行热循环来反转铁的磁化方向。在这里,我们使用元素选择性磁化测量来证明Fe / MnAs / GaAs(001)系统的各种磁性构型可通过作用于热循环参数和存在偏置场而可预测地稳定下来。我们特别表明,在循环过程中达到的最高温度会影响最终的磁配置。我们的发现表明,快速磁化切换的应用是可能的,在这种情况下,激光激发会引起局部温度变化。

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