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使用薄硅量子阱降低量子点中的电荷噪声。

Reducing charge noise in quantum dots by using thin silicon quantum wells.

机构信息

QuTech and Kavli Institute of Nanoscience, Delft University of Technology, PO Box 5046, 2600 GA, Delft, The Netherlands.

QuTech and Netherlands Organisation for Applied Scientific Research (TNO), Delft, The Netherlands.

出版信息

Nat Commun. 2023 Mar 13;14(1):1385. doi: 10.1038/s41467-023-36951-w.

Abstract

Charge noise in the host semiconductor degrades the performance of spin-qubits and poses an obstacle to control large quantum processors. However, it is challenging to engineer the heterogeneous material stack of gate-defined quantum dots to improve charge noise systematically. Here, we address the semiconductor-dielectric interface and the buried quantum well of a Si/SiGe heterostructure and show the connection between charge noise, measured locally in quantum dots, and global disorder in the host semiconductor, measured with macroscopic Hall bars. In 5 nm thick Si quantum wells, we find that improvements in the scattering properties and uniformity of the two-dimensional electron gas over a 100 mm wafer correspond to a significant reduction in charge noise, with a minimum value of 0.29 ± 0.02 μeV/Hz at 1 Hz averaged over several quantum dots. We extrapolate the measured charge noise to simulated dephasing times to CZ-gate fidelities that improve nearly one order of magnitude. These results point to a clean and quiet crystalline environment for integrating long-lived and high-fidelity spin qubits into a larger system.

摘要

在宿主半导体中的电荷噪声会降低自旋量子位的性能,并成为控制大型量子处理器的障碍。然而,通过工程设计栅极定义的量子点的异质材料堆叠来系统地改善电荷噪声具有挑战性。在这里,我们研究了 Si/SiGe 异质结构的半导体-介电界面和埋入量子阱,并展示了在量子点中局部测量的电荷噪声与在宏观霍尔条中测量的宿主半导体中的全局无序之间的联系。在 5nm 厚的 Si 量子阱中,我们发现二维电子气的散射性质和均匀性在 100mm 晶圆上得到改善,对应于电荷噪声的显著降低,在几个量子点上平均,在 1Hz 时的最小值为 0.29±0.02μeV/Hz。我们将测量的电荷噪声外推到模拟的退相时间,以获得CZ 门保真度的提高,提高了近一个数量级。这些结果表明,对于将长寿命和高保真度的自旋量子位集成到更大的系统中,存在一个干净和安静的晶体环境。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f6d0/10011559/ddc384872f89/41467_2023_36951_Fig1_HTML.jpg

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