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金刚石中氮空位中心的稳健全光单次读出

Robust all-optical single-shot readout of nitrogen-vacancy centers in diamond.

作者信息

Irber Dominik M, Poggiali Francesco, Kong Fei, Kieschnick Michael, Lühmann Tobias, Kwiatkowski Damian, Meijer Jan, Du Jiangfeng, Shi Fazhan, Reinhard Friedemann

机构信息

TU München, Walter Schottky Institut and Physik-Department, Am Coulombwall 4, 85748, München, Germany.

Munich Center for Quantum Science and Technology (MCQST), Schellingstraße 4, 80799, München, Germany.

出版信息

Nat Commun. 2021 Jan 22;12(1):532. doi: 10.1038/s41467-020-20755-3.

Abstract

High-fidelity projective readout of a qubit's state in a single experimental repetition is a prerequisite for various quantum protocols of sensing and computing. Achieving single-shot readout is challenging for solid-state qubits. For Nitrogen-Vacancy (NV) centers in diamond, it has been realized using nuclear memories or resonant excitation at cryogenic temperature. All of these existing approaches have stringent experimental demands. In particular, they require a high efficiency of photon collection, such as immersion optics or all-diamond micro-optics. For some of the most relevant applications, such as shallow implanted NV centers in a cryogenic environment, these tools are unavailable. Here we demonstrate an all-optical spin readout scheme that achieves single-shot fidelity even if photon collection is poor (delivering less than 10 clicks/second). The scheme is based on spin-dependent resonant excitation at cryogenic temperature combined with spin-to-charge conversion, mapping the fragile electron spin states to the stable charge states. We prove this technique to work on shallow implanted NV centers, as they are required for sensing and scalable NV-based quantum registers.

摘要

在单次实验重复中对量子比特状态进行高保真投影读出是各种传感和计算量子协议的先决条件。实现固态量子比特的单次读出具有挑战性。对于金刚石中的氮空位(NV)中心,已通过核存储器或低温下的共振激发实现了这一点。所有这些现有方法都有严格的实验要求。特别是,它们需要高效率的光子收集,例如浸没光学或全金刚石微光学。对于一些最相关的应用,如低温环境中浅植入的NV中心,这些工具无法使用。在这里,我们展示了一种全光学自旋读出方案,即使光子收集效率很低(每秒少于10次点击),也能实现单次保真度。该方案基于低温下的自旋相关共振激发与自旋到电荷的转换,将脆弱的电子自旋态映射到稳定的电荷态。我们证明了这种技术可用于浅植入的NV中心,因为它们是传感和可扩展的基于NV的量子寄存器所必需的。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8f43/7822820/03cf92d8d101/41467_2020_20755_Fig1_HTML.jpg

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