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Spin-orbit coupling and spin relaxation of hole states in [001]- and [111]-oriented quantum dots of various geometry

机译:在[001] - 和[111]各种几何形状的孔状态的旋转轨道耦合和旋转弛豫孔状态

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We study the influence of spin-orbit coupling on the hole states in InAs/GaAs quantum dots grown on [001]and [111]-oriented substrates belonging to symmetry point groups: C-2v, C-3v, and D-2d. We investigate the impact of various spin-orbit mechanisms on the strength of coupling between s-and p-shell states, which is a significant spin-flip channel in quantum dots. We calculate spin relaxation rates between the states of lowest Zeeman doublet and show that the [111]-oriented structure offers one order of magnitude slower relaxation compared to the usual [001]-oriented self-assembled QD. The magnetic-field dependence of the hole states is calculated using multiband (up to 14 bands) k.p model. We identify the irreducible representations linked to the states and discuss the selection rules, which govern the avoided-crossing pattern in magnetic-field dependence of the energy levels. We show that dominant contribution to the coupling between some of these states comes from the shear strain. On the other hand, we demonstrate no coupling between s- and p-shell states in the [111]-oriented structure.
机译:我们研究了在[001]中生长的INAS / GAAS量子点中的孔状态上的旋转轨道耦合对孔状态的影响,属于对称点组的[111]核底物:C-2V,C-3V和D-2D。我们研究了各种旋转轨道机制对S-and P壳状态耦合强度的影响,这是量子点中的一个重要的自旋翻转通道。我们计算最低Zeeman Doublet状态之间的旋转弛豫率,并表明[111] - oriented结构提供了与通常的自组装QD相比的一个幅度较慢的放松。使用多频带(最多14个带)K.P模型计算孔状态的磁场依赖性。我们识别与各州相关的不可缩短的表示,并讨论选择规则,该规则管理能量水平的磁场依赖性的避免交叉模式。我们表明,对这些州之间的耦合的主导贡献来自剪切应变。另一方面,我们在[111]的结构中的S&P-Shell状态之间表现出耦合。

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    《Physical review. B, Condensed Matter And Materals Physics 》 |2019年第12期| 125401.1-125401.9| 共9页
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    Wroclaw Univ Technol Dept Theoret Phys Fac Fundamental Problems Technol Wybrzeze Wyspianskiego 27 PL-50370 Wroclaw Poland;

    Wroclaw Univ Technol Dept Theoret Phys Fac Fundamental Problems Technol Wybrzeze Wyspianskiego 27 PL-50370 Wroclaw Poland;

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