论文标题

二维金属中的量子自旋大厅效应,无自旋轨道耦合

Quantum spin Hall effect in two-dimensional metals without spin-orbit coupling

论文作者

Zhao, Aiying, Gu, Qiang, Haugan, Timothy J., Bullard, Thomas J., Klemm, Richard A.

论文摘要

使用自旋轨道耦合作为探针在拓扑绝缘子中观察到了量子自旋效应,但在金属中尚未观察到它。提出了一项实验,以通过使用先前未探索但相对生成的2D量子自旋霍尔顿汉密尔顿(Hamiltonian)但不使用自旋轨耦合,测量二维(2D)金属中电子或孔的量子自旋效应。长圆柱电磁阀通常位于2D金属Corbino磁盘的内半径。螺线管周围的当前$ I_S $产生方位角磁性矢量电位,但磁盘中没有磁场。此外,通过(a)施加电位差$ΔV$或(b)径向电荷电流$ {\ bm i} $在其内部和外部半径上产生径向电场。 $ i_s $以及$ΔV$或$ {\ bm i} $中的合并更改会自发量化方位角电荷和旋转电流。该实验旨在测量这些量化的方位角电荷和磁盘中的自旋电流。用于实验的量子哈密顿量(a)和(b)均已准确解决。提出了一种控制焦耳加热的方法,该方法有可能在室温下进行量子旋转大厅的测量。该设计的扩展到一系列热管理的螺线管,每个螺线管都被2D金属Corbino磁盘的热管理堆栈包围,可以用作量子计算机,可以在室温下可能运行。

The quantum spin Hall effect has been observed in topological insulators using spin-orbit coupling as the probe, but it has not yet been observed in a metal. An experiment is proposed to measure the quantum spin Hall effect of an electron or hole in a two-dimensional (2D) metal by using the previously unexplored but relativistically generated 2D quantum spin Hall Hamiltonian, but without using spin-orbit coupling. A long cylindrical solenoid lies normally through the inner radius of a 2D metallic Corbino disk. The current $I_S$ surrounding the solenoid produces an azimuthal magnetic vector potential but no magnetic field in the disk. In addition, a radial electric field is generated across the disk by imposing either (a) a potential difference $Δv$ or (b) a radial charge current ${\bm I}$ across its inner and outer radii. Combined changes in $I_S$ and in either $Δv$ or ${\bm I}$ generate spontaneously quantized azimuthal charge and spin currents. The experiment is designed to measure these quantized azimuthal charge and spin currents in the disk consistently. The quantum Hamiltonians for experiments (a) and (b) are both solved exactly. A method to control the Joule heating is presented, which could potentially allow the quantum spin Hall measurements to be made at room temperature. Extensions of this design to an array of thermally-managed solenoids, each surrounded by thermally-managed stacks of 2D metallic Corbino disks, could function as a quantum computer that could potentially operate at room temperature.

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