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Spin-orbit interaction and controlled singlet-triplet dynamics in silicon double quantum dots

机译:硅双量子点中的旋转轨道相互作用和控制单态 - 三重态动态

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We undertake a theoretical study of the role of spin orbit interactions in a silicon double quantum dot. We propose that an accurate estimate of the strength of this interaction can be obtained through the study of the return probability of the double occupation singlet state in a magnetic field, as the system is gated dynamically across the relevant states in the low energy two-electron manifold. Landau-Zener type of processes involving appropriate control of voltage pulses across neighboring avoided crossings in the energy spectrum of the system are utilized to explore the system dynamics. Our description takes into account Zeeman splitting, intervalley mixing and spin-orbit interaction present in the structure. Using a density matrix equation of motion approach, we carry out numerical calculations for the return probability of the double occupation singlet state. The analysis in terms of Landau-Zener theory allows the determination of the spin-orbit coupling strength for different Zeeman splitting regimes.
机译:我们对硅双量子点中的旋转轨道相互作用的作用进行了理论研究。我们提出通过研究磁场中的双占用单向状态的返回概率来获得对该相互作用强度的准确估计,因为系统在低能量两电子中动态地界面界面。歧管。利用Landau-Zener类型的涉及适当控制跨越相邻电压脉冲的过程,避免了系统的能谱中的避免交叉,以探索系统动态。我们的描述考虑了结构中的Zeeman分裂,inchalley混合和结构中的旋转轨道交互。使用运动方法的密度矩阵方程,我们对双职单态的返回概率进行数值计算。 Landau-Zener理论方面的分析允许确定不同塞曼分裂制度的旋转轨道耦合强度。

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