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Electric-field-induced interferometric resonance of a one-dimensional spin-orbit-coupled electron

机译:一维自旋轨道耦合电子的电场诱导干涉共振

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摘要

The efficient control of electron spins is of crucial importance for spintronics, quantum metrology, and quantum information processing. We theoretically formulate an electric mechanism to probe the electron spin dynamics, by focusing on a one-dimensional spin-orbit-coupled nanowire quantum dot. Owing to the existence of spin-orbit coupling and a pulsed electric field, different spin-orbit states are shown to interfere with each other, generating intriguing interference-resonant patterns. We also reveal that an in-plane magnetic field does not affect the interval of any neighboring resonant peaks, but contributes a weak shift of each peak, which is sensitive to the direction of the magnetic field. We find that this proposed external-field-controlled scheme should be regarded as a new type of quantum-dot-based interferometry. This interferometry has potential applications in precise measurements of relevant experimental parameters, such as the Rashba and Dresselhaus spin-orbit-coupling strengths, as well as the Landé factor.
机译:电子自旋的有效控制对于自旋电子学,量子计量学和量子信息处理至关重要。从理论上讲,我们着眼于一维自旋轨道耦合纳米线量子点,从而构造了一种机制来探测电子自旋动力学。由于存在自旋轨道耦合和脉冲电场,因此显示了不同的自旋轨道状态会相互干扰,从而生成有趣的干扰共振模式。我们还揭示出,面内磁场不会影响任何相邻共振峰的间隔,但会导致每个峰的微弱位移,这对磁场方向很敏感。我们发现,该提议的外部场控制方案应被视为一种新型的基于量子点的干涉测量法。这种干涉测量法在精确测量相关实验参数方面具有潜在的应用价值,例如Rashba和Dresselhaus自旋轨道耦合强度以及Landé因子。

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