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硅中核自旋量子位的高保真读出和控制。

High-fidelity readout and control of a nuclear spin qubit in silicon.

机构信息

Centre for Quantum Computation and Communication Technology, School of Electrical Engineering and Telecommunications, University of New South Wales, Sydney, New South Wales 2052, Australia.

出版信息

Nature. 2013 Apr 18;496(7445):334-8. doi: 10.1038/nature12011.

DOI:10.1038/nature12011
PMID:23598342
Abstract

Detection of nuclear spin precession is critical for a wide range of scientific techniques that have applications in diverse fields including analytical chemistry, materials science, medicine and biology. Fundamentally, it is possible because of the extreme isolation of nuclear spins from their environment. This isolation also makes single nuclear spins desirable for quantum-information processing, as shown by pioneering studies on nitrogen-vacancy centres in diamond. The nuclear spin of a (31)P donor in silicon is very promising as a quantum bit: bulk measurements indicate that it has excellent coherence times and silicon is the dominant material in the microelectronics industry. Here we demonstrate electrical detection and coherent manipulation of a single (31)P nuclear spin qubit with sufficiently high fidelities for fault-tolerant quantum computing. By integrating single-shot readout of the electron spin with on-chip electron spin resonance, we demonstrate quantum non-demolition and electrical single-shot readout of the nuclear spin with a readout fidelity higher than 99.8 percent-the highest so far reported for any solid-state qubit. The single nuclear spin is then operated as a qubit by applying coherent radio-frequency pulses. For an ionized (31)P donor, we find a nuclear spin coherence time of 60 milliseconds and a one-qubit gate control fidelity exceeding 98 percent. These results demonstrate that the dominant technology of modern electronics can be adapted to host a complete electrical measurement and control platform for nuclear-spin-based quantum-information processing.

摘要

核自旋进动的检测对于广泛的科学技术至关重要,这些技术在分析化学、材料科学、医学和生物学等多个领域都有应用。从根本上讲,这是因为核自旋与环境的极端隔离。这种隔离也使得单核自旋成为量子信息处理的理想选择,这一点已经在钻石中的氮空位中心的开创性研究中得到了证明。硅中的(31)P 供体核自旋作为量子位非常有前途:体测量表明,它具有出色的相干时间,而硅是微电子行业的主要材料。在这里,我们展示了具有足够高的容错量子计算保真度的单个(31)P 核自旋量子位的电检测和相干操纵。通过集成电子自旋的单次读出与片上电子自旋共振,我们证明了核自旋的量子非破坏和电单量子比特读出,读出保真度高于 99.8%,这是迄今为止任何固态量子位中报告的最高值。然后,通过施加相干射频脉冲,将单个核自旋用作量子位。对于一个被离子化的(31)P 供体,我们发现核自旋相干时间为 60 毫秒,单量子比特门控制保真度超过 98%。这些结果表明,现代电子技术的主导技术可以适应基于核自旋的量子信息处理的完整电测量和控制平台。

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Single-shot readout of the nuclear spin of an on-surface atom.表面原子核自旋的单次读出。
Nat Commun. 2025 Aug 21;16(1):7785. doi: 10.1038/s41467-025-63232-5.
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Coherent photoelectrical readout of single spins in silicon carbide at room temperature.室温下碳化硅中单个自旋的相干光电读出。

本文引用的文献

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Nanoscale broadband transmission lines for spin qubit control.用于自旋量子比特控制的纳米级宽带传输线。
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