论文标题

半导体量子点中自旋Qubit的单发读数的阈值无关的方法

Threshold-independent method for single-shot readout of spin qubits in semiconductor quantum dots

论文作者

Hu, Rui-Zi, Zhu, Sheng-Kai, Zhang, Xin, Zhou, Yuan, Ni, Ming, Ma, Rong-Long, Kong, Zhen-Zhen, Wang, Gui-Lei, Cao, Gang, Li, Hai-Ou, Guo, Guo-Ping

论文摘要

单发读数数据过程对于在半导体量子点中实现高保真量子和容忍故障的量子算法至关重要。但是,读取过程的保真度和可见性对选择阈值的选择敏感,并且受到实验硬件的限制。通过证明测得的自旋态概率和读出可见性之间的线性依赖性以及黑暗计数,我们描述了一种独立于阈值的方法,用于半导体量子点中自旋Qubit的单次读数。我们可以通过非依赖性方法获得激发自旋态制备概率的推断自旋态概率。然后,我们分析了该方法的相应误差,发现在读取时间和阈值电压上没有任何约束,无法忽略外推概率的误差。因此,通过限制读数时间和阈值电压,我们确保了外推概率的准确性。然后,我们证明该方法的效率和鲁棒性比最常用的方法大60倍。此外,我们通过固定的外部磁场讨论电子温度对有效区域的影响,并为将来的单发读数提供了初步演示,以后最高0.7 k/1.5t。

The single-shot readout data process is essential for the realization of high-fidelity qubits and fault-tolerant quantum algorithms in semiconductor quantum dots. However, the fidelity and visibility of the readout process is sensitive to the choice of the thresholds and limited by the experimental hardware. By demonstrating the linear dependence between the measured spin state probabilities and readout visibilities along with dark counts, we describe an alternative threshold-independent method for the single-shot readout of spin qubits in semiconductor quantum dots. We can obtain the extrapolated spin state probabilities of the prepared probabilities of the excited spin state through the threshold-independent method. Then, we analyze the corresponding errors of the method, finding that errors of the extrapolated probabilities cannot be neglected with no constraints on the readout time and threshold voltage. Therefore, by limiting the readout time and threshold voltage we ensure the accuracy of the extrapolated probability. Then, we prove that the efficiency and robustness of this method is 60 times larger than that of the most commonly used method. Moreover, we discuss the influence of the electron temperature on the effective area with a fixed external magnetic field and provide a preliminary demonstration for a single-shot readout up to 0.7 K/1.5T in the future.

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