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One-second coherence for a single electron spin coupled to a multi-qubit nuclear-spin environment

机译:单电子自旋与多量子位核自旋环境耦合的一秒相干性

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摘要

Single electron spins coupled to multiple nuclear spins provide promising multi-qubit registers for quantum sensing and quantum networks. The obtainable level of control is determined by how well the electron spin can be selectively coupled to, and decoupled from, the surrounding nuclear spins. Here we realize a coherence time exceeding a second for a single nitrogen-vacancy electron spin through decoupling sequences tailored to its microscopic nuclear-spin environment. First, we use the electron spin to probe the environment, which is accurately described by seven individual and six pairs of coupled carbon-13 spins. We develop initialization, control and readout of the carbon-13 pairs in order to directly reveal their atomic structure. We then exploit this knowledge to store quantum states in the electron spin for over a second by carefully avoiding unwanted interactions. These results provide a proof-of-principle for quantum sensing of complex multi-spin systems and an opportunity for multi-qubit quantum registers with long coherence times.
机译:与多个核自旋耦合的单电子自旋为量子传感和量子网络提供了有希望的多量子位寄存器。可获得的控制水平取决于电子自旋可以选择性地耦合到周围核自旋以及与周围核自旋解耦的程度。在这里,我们通过针对其微观核自旋环境量身定制的解耦序列,实现了单个氮空位电子自旋的相干时间超过了一秒钟。首先,我们使用电子自旋来探测环境,该环境由七个独立的和六对碳13自旋耦合而成。我们开发碳13对的初始化,控制和读数,以便直接揭示它们的原子结构。然后,我们通过谨慎地避免不必要的相互作用,利用这一知识将量子态存储在电子自旋中一秒钟以上。这些结果为复杂的多自旋系统的量子感测提供了原理证明,并为具有长相干时间的多量子位量子寄存器提供了机会。

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