Driven dynamics of a quantum dot electron spin coupled to a bath of higher-spin nuclei

A. Vezvaee, G. Sharma, S. Economou, Edwin Barnes
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引用次数: 2

Abstract

The interplay of optical driving and hyperfine interaction between an electron confined in a quantum dot and its surrounding nuclear spin environment produces a range of interesting physics such as mode-locking. In this work, we go beyond the ubiquitous spin 1/2 approximation for nuclear spins and present a comprehensive theoretical framework for an optically driven electron spin in a self-assembled quantum dot coupled to a nuclear spin bath of arbitrary spin. Using a dynamical mean-field approach, we compute the nuclear spin polarization distribution with and without the quadrupolar coupling. We find that while hyperfine interactions drive dynamic nuclear polarization and mode-locking, quadrupolar couplings counteract these effects. The tension between these mechanisms is imprinted on the steady-state electron spin evolution, providing a way to measure the importance of quadrupolar interactions in a quantum dot. Our results show that higher-spin effects such as quadrupolar interactions can have a significant impact on the generation of dynamic nuclear polarization and how it influences the electron spin evolution.
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量子点电子自旋与高自旋原子核耦合的驱动动力学
量子点中的电子与其周围的核自旋环境之间的光驱动和超精细相互作用产生了一系列有趣的物理现象,如模式锁定。在这项工作中,我们超越了普遍存在的自旋1/2近似,并提出了一个综合的理论框架,用于自组装量子点中与任意自旋核自旋池耦合的光驱动电子自旋。利用动力学平均场方法,计算了有和没有四极耦合的核自旋极化分布。我们发现,虽然超精细相互作用驱动动态核极化和模式锁定,但四极耦合抵消了这些影响。这些机制之间的张力被印在稳态电子自旋演化上,为测量量子点中四极相互作用的重要性提供了一种方法。我们的研究结果表明,高自旋效应,如四极相互作用,可以对动态核极化的产生及其如何影响电子自旋演化产生重大影响。
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