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Coherent acoustic control of a single silicon vacancy spin in diamond

机译:钻石中单个硅空位旋转的相干声学控制

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摘要

Phonons are considered to be universal quantum transducers due to their ability to couple to a wide variety of quantum systems. Among these systems, solid-state point defect spins are known for being long-lived optically accessible quantum memories. Recently, it has been shown that inversion-symmetric defects in diamond, such as the negatively charged silicon vacancy center (SiV), feature spin qubits that are highly susceptible to strain. Here, we leverage this strain response to achieve coherent and low-power acoustic control of a single SiV spin, and perform acoustically driven Ramsey interferometry of a single spin. Our results demonstrate an efficient method of spin control for these systems, offering a path towards strong spin-phonon coupling and phonon-mediated hybrid quantum systems.
机译:由于它们能够耦合到各种量子系统而被认为是通用量子传感器的通用量子传感器。在这些系统中,已知用于长期光学访问量子存储器的固态点缺陷旋转。最近,已经表明,金刚石中的反转对称缺陷,例如带负电的硅空位中心(SIV),具有高易受菌株的旋转Qubits。这里,我们利用这种应变响应来实现单个SIV旋转的相干和低功率声学控制,并进行单一旋转的声学驱动的拉姆施干涉法。我们的结果表明了对这些系统的旋转控制的有效方法,为强大的旋转声子耦合和声子介导的混合量子系统提供了一种路径。

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