论文标题

微波和自旋传输扭矩驱动的相干控制

Microwave and spin transfer torque driven coherent control in ferromagnets

论文作者

Brik, Marina, Bernstein, Nirel, Capua, Amir

论文摘要

连贯的控制是一种使用依赖于非绝热相互作用的振荡性电磁辐射来操纵物质的方法。它通常应用于量子处理应用中。在铁磁材料的背景下,该技术很有趣,因为能够将其与Spintronics结合起来,以进行基本的自旋运输研究,低功率信息处理以及潜在的未来量子位(Qubit)应用。在这项工作中,我们解决了实用铁磁系统中相干操纵的理论基础。我们研究电磁辐射驱动的相互作用,在存在自旋极化电流的情况下,该相互作用得到了增强,并绘制了允许发生Rabi振荡的相干操纵的条件。磁各向异性场的作用被证明是额外的振荡驱动场。我们在有效的相干衰减率的背景下讨论了吉尔伯特的损失,并表明可以通过应用静态自旋电流来控制这些速率。还讨论了使用振荡性自旋电流进行连贯操作的情况。我们的工作为旋转电流扩增以及无辐射相干控制方案铺平了道路,这些方案可能会导致新颖的Qubits稳健且可扩展。

Coherent control is a method used to manipulate the state of matter using oscillatory electromagnetic radiation which relies on the non-adiabatic interaction. It is commonly applied in quantum processing applications. This technique is interesting in the context of ferromagnetic materials because of the ability to combine it with spintronics for the purpose of fundamental spin transport research, low-power information processing, and potentially future quantum bit (Qubit) applications. In this work we address the theoretical grounds of coherent manipulation in practical ferromagnetic systems. We study electromagnetic radiation driven interaction that is enhanced in the presence of spin polarized currents and map the conditions that allow coherent manipulation for which Rabi oscillations take place. The role of the magnetic anisotropy field is shown to act as an additional oscillatory driving field. We discuss the Gilbert losses in the context of effective coherence decay rates and show that it is possible to control these rates by application of a static spin current. The case of coherent manipulation using oscillatory spin currents that is free of radiation is discussed as well. Our work paves the way towards spin current amplification as well as radiation-free coherent control schemes that may potentially lead to novel Qubits that are robust and scalable.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源