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Coupling a single electron spin to a microwave resonator: controlling transverse and longitudinal couplings

机译:将单个电子自旋耦合至微波谐振器:控制横向和纵向耦合

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摘要

Microwave-frequency superconducting resonators are ideally suited to perform dispersive qubit readout, to mediate two-qubit gates, and to shuttle states between distant quantum systems. A prerequisite for these applications is a strong qubit-resonator coupling. Strong coupling between an electron-spin qubit and a microwave resonator can be achieved by correlating spin-and orbital degrees of freedom. This correlation can be achieved through the Zeeman coupling of a single electron in a double quantum dot to a spatially inhomogeneous magnetic field generated by a nearby nanomagnet. In this paper, we consider such a device and estimate spin-resonator couplings of order similar to 1. MHz with realistic parameters. Further, through realistic simulations, we show that precise placement of the double-dot relative to the nanomagnet allows to select between a purely longitudinal coupling (commuting with the bare spin Hamiltonian) and a purely transverse (spin non-conserving) coupling. Additionally, we suggest methods to mitigate dephasing and relaxation channels that are introduced in this coupling scheme. This analysis gives a clear route toward the realization of coherent state transfer between a microwave resonator and a single electron spin in a GaAs double quantum dot with a fidelity above 90%. Improved dynamical decoupling sequences, low-noise environments, and longer-lived microwave cavity modes may lead to substantially higher fidelities in the near future.
机译:微波超导谐振器非常适合执行色散量子比特读出,介导两个量子比特的门以及在遥远的量子系统之间穿梭状态。这些应用的先决条件是牢固的量子位-谐振器耦合。电子自旋量子位和微波谐振器之间的强耦合可以通过使自旋和轨道的自由度相关来实现。这种相关性可以通过将双量子点中的单个电子与附近的纳米磁体产生的空间不均匀磁场的塞曼耦合实现。在本文中,我们考虑了这种设备,并估计了具有实际参数的自旋谐振器耦合,其阶数类似于1. MHz。此外,通过现实的模拟,我们表明双点相对于纳米磁体的精确放置允许在纯纵向耦合(与裸自旋哈密顿量交换)和纯横向(自旋非保守)耦合之间进行选择。此外,我们建议了在此耦合方案中引入的减轻相移和弛豫通道的方法。该分析为在保真度高于90%的GaAs双量子点中实现微波谐振器与单电子自旋之间的相干态转移提供了一条清晰的路线。改进的动态去耦序列,低噪声环境和寿命更长的微波腔模式可能会在不久的将来带来更高的保真度。

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