首页> 外文期刊>Physical Review X >Controlling Spin-Orbit Interactions in Silicon Quantum Dots Using Magnetic Field Direction
【24h】

Controlling Spin-Orbit Interactions in Silicon Quantum Dots Using Magnetic Field Direction

机译:使用磁场方向控制硅量子点中的旋转轨道相互作用

获取原文
           

摘要

Silicon quantum dots are considered an excellent platform for spin qubits, partly due to their weak spin-orbit interaction. However, the sharp interfaces in the heterostructures induce a small but significant spin-orbit interaction that degrades the performance of the qubits or, when understood and controlled, could be used as a powerful resource. To understand how to control this interaction, we build a detailed profile of the spin-orbit interaction of a silicon metal-oxide-semiconductor double quantum-dot system. We probe the derivative of the Stark shift, g -factor and g -factor difference for two single-electron quantum-dot qubits as a function of external magnetic field and find that they are dominated by spin-orbit interactions originating from the vector potential, consistent with recent theoretical predictions. Conversely, by populating the double dot with two electrons, we probe the mixing of singlet and spin-polarized triplet states during electron tunneling, which we conclude is dominated by momentum-term spin-orbit interactions that vary from 1.85?MHz up to 27.5?MHz depending on the magnetic field orientation. Finally, we exploit the tunability of the derivative of the Stark shift of one of the dots to reduce its sensitivity to electric noise and observe an 80% increase in T 2 * . We conclude that the tuning of the spin-orbit interaction will be crucial for scalable quantum computing in silicon and that the optimal setting will depend on the exact mode of qubit operations used.
机译:硅量子点被认为是旋转Qubits的优秀平台,部分原因是它们弱自旋轨道相互作用。然而,异质结构中的尖锐界面诱导小但显着的旋转轨道交互,从而降低了Qubits的性能,或者在理解和控制时,可以用作强大的资源。要了解如何控制这种交互,我们构建了硅金属氧化物半导体双量子点系统的旋转轨道相互作用的详细轮廓。我们探测了两个单电子量子点Qubits的STARK移位,G -Factor和G-Factor差异的衍生物作为外部磁场的函数,并发现它们由源自矢量电位的旋转轨道交互来支配,与最近的理论预测一致。相反,通过用两个电子填充双点,我们在电子隧道期间探测单线态和旋转偏振三联状态的混合,我们的结论是由0.85?MHz的动量旋转轨道相互作用占主导地位? MHz取决于磁场方向。最后,我们利用其中一个点的STARK偏移的导数的可调性降低其对电噪声的敏感性,并观察到T 2 *的80%增加。我们得出结论,旋转轨道交互的调谐对于硅中可扩展量子计算至关重要,并且最佳设置取决于所使用的Qubit操作的确切模式。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号