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Signatures of quantum mechanical Zeeman effect in classical transport due to topological properties of two-dimensional spin-3/2 holes

机译:由于二维自旋3/2孔的拓扑特性,经典传输中的量子机械塞曼效应的特征

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摘要

The Zeeman interaction is a quantum mechanical effect that underpins spin-based quantum devices such as spin qubits. Typically, identification of the Zeeman interaction needs a large out-of-plane magnetic field coupled with ultralow temperatures, which limits the practicality of spin-based devices. However, in two-dimensional (2D) semiconductor holes, the strong spin-orbit interaction causes the Zeeman interaction to couple the spin, the magnetic field, and the momentum, and has terms with different winding numbers. In this work, we demonstrate a physical mechanism by which the Zeeman terms can be detected in classical transport. The effect we predict is very strong, and tunable by means of both the density and the in-plane magnetic field. It is a direct signature of the topological properties of the 2D hole system, and a manifestation in classical transport of an effect stemming from relativistic quantum mechanics. We discuss experimental observation and implications for quantum technologies.
机译:Zeeman相互作用是一种量子力学效应,可增强基于自旋的量子器件(如自旋量子位)。通常,对Zeeman相互作用的识别需要大的平面外磁场和超低温度,这限制了基于自旋的器件的实用性。但是,在二维(2D)半导体空穴中,强自旋轨道相互作用导致塞曼相互作用将自旋,磁场和动量耦合,并且具有具有不同绕组数的项。在这项工作中,我们演示了一种可以在经典运输中检测塞曼项的物理机制。我们预测的效果非常强,并且可以通过密度和面内磁场进行调整。它是2D孔系统拓扑特性的直接标志,并且是相对论量子力学产生的效应的经典传输形式。我们讨论了实验观察和量子技术的意义。

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  • 来源
    《Physical review》 |2020年第12期|121302.1-121302.6|共6页
  • 作者单位

    School of Physics and Australian Research Council Centre of Excellence in Future Low-Energy Electronics Technologies The University of New South Wales Sydney 2052 Australia School of Physical and Mathematical Sciences Nanyang Technological University 21 Nanyang Link Singapore 637371;

    Beijing Computational Science Research Center Beijing 100193 China;

    School of Physics and Australian Research Council Centre of Excellence in Future Low-Energy Electronics Technologies The University of New South Wales Sydney 2052 Australia;

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