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首页> 外文期刊>Physical review. B, Condensed Matter And Materals Physics >Magnetic field dependence of the electron spin revival amplitude in periodically pulsed quantum dots
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Magnetic field dependence of the electron spin revival amplitude in periodically pulsed quantum dots

机译:周期性脉冲量子点中电子自旋恢复幅度的磁场依赖性

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Periodic laser pulsing of singly charged semiconductor quantum dots in an external magnetic field leads to a synchronization of the spin dynamics with the optical excitation. The pumped electron spins partially rephase prior to each laser pulse, causing a revival of electron spin polarization with its maximum at the incidence time of a laser pulse. The amplitude of this revival is amplified by the frequency focusing of the surrounding nuclear spins. Two complementary theoretical approaches for simulating up to 20 million laser pulses are developed and employed that are able to bridge between 11 orders of magnitude in time: a fully quantum mechanical description limited to small nuclear bath sizes and a technique based on the classical equations of motion applicable for a large number of nuclear spins. We present experimental data of the nonmonotonic revival amplitude as function of the magnetic field applied perpendicular to the optical axis. The dependence of the revival amplitude on the external field with a profound minimum at 4 T is reproduced by both of our theoretical approaches and is ascribed to the nuclear Zeeman effect. Since the nuclear Larmor precession determines the electronic resonance condition, it also defines the number of electron spin revolutions between pump pulses, the orientation of the electron spin at the incidence time of a pump pulse, and the resulting revival amplitude. The magnetic field of 4 T, for example, corresponds to half a revolution of nuclear spins between two laser pulses.
机译:在外部磁场中对单个带电的半导体量子点进行周期性的激光脉冲处理会导致自旋动力学与光学激发同步。抽运的电子自旋在每个激光脉冲之前会部分重定相,从而使电子自旋极化在激光脉冲的入射时间恢复到最大值。这种复兴的幅度被周围核自旋的频率聚焦所放大。研发并采用了两种互补的理论方法来模拟多达2000万个激光脉冲,这些方法能够在11个数量级的时间之间进行桥接:仅限于较小核浴槽尺寸的全量子力学描述和基于经典运动方程的技术适用于大量核自旋。我们提出了非单调复兴幅度作为垂直于光轴施加的磁场的函数的实验数据。我们的两种理论方法都再现了复兴振幅对外部磁场的依赖性,该磁场在4 T处具有极小的最小值,并且归因于核塞曼效应。由于拉莫尔核进动决定了电子共振条件,因此它还定义了泵浦脉冲之间的电子自旋转数,泵浦脉冲入射时电子自旋的取向以及最终的恢复幅度。例如,4 T的磁场对应于两个激光脉冲之间核自旋的半圈。

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