论文标题

紧密耦合的固态自旋之间有效偶极相互作用的衣服控制

Dressed-state control of effective dipolar interaction between strongly-coupled solid-state spins

论文作者

Lee, Junghyun, Tatsuta, Mamiko, Xu, Andrew, Bauch, Erik, Ku, Mark J. H., Walsworth, Ronald. L.

论文摘要

多体固态量子系统中旋转之间的强烈相互作用是探索和应用非古典状态的关键资源。特别是,与钻石系统缺陷相关的电子旋转是研究集体量子现象和量子技术应用的领先平台。尽管这种固态量子缺陷系统具有可伸缩性和在环境条件下运行的优势,但它们面临控制缺陷旋转之间相互作用的关键挑战,因为缺陷是在宿主晶格内部的空间固定,并且在制造过程中无法很好地控制相对位置。在这项工作中,我们提出了一种穿着的状态方法,可以控制固态旋转之间有效的偶极耦合。然后使用两个在钻石中的两个强耦合氮空位(NV)中心实验证明了这一方案。包括在NV Spin Hamiltonian中的M $ _s $ = 0和$ \ $ $ $ $ $ $ $ 1之间的Rabi驾驶条款,使我们能够打开和关闭或调整两个NV旋转之间的有效偶极耦合。通过Ramsey光谱法,我们检测到在不同着装状态下制备的控制NV自旋产生的有效偶极场的变化。为了观察相互作用动力学的变化,我们通过在不同着装状态下的两个NV旋转之间的Hartmann-Hahn匹配条件部署了基于自旋锁的极化转移测量。我们执行模拟,表明这种强大方案的希望可以控制强烈相互交互的自旋系统中相互作用强度的分布,包括在旋转合奏中的相互作用强度均质化,这可能是研究非平衡量子阶段的有价值的工具,用于研究非平衡性多型多型量子,以实现量子增强的量子增强量相关的感觉。

Strong interactions between spins in many-body solid-state quantum system is a crucial resource for exploring and applying non-classical states. In particular, electronic spins associated with defects in diamond system are a leading platform for the study of collective quantum phenomena and for quantum technology applications. While such solid-state quantum defect systems have the advantage of scalability and operation under ambient conditions, they face the key challenge of controlling interactions between the defects spins, since the defects are spatially fixed inside the host lattice with relative positions that cannot be well controlled during fabrication. In this work, we present a dressed-state approach to control the effective dipolar coupling between solid-state spins; and then demonstrate this scheme experimentally using two strongly-coupled nitrogen vacancy (NV) centers in diamond. Including Rabi driving terms between the m$_s$ = 0 and $\pm$1 states in the NV spin Hamiltonian allows us to turn on and off or tune the effective dipolar coupling between two NV spins. Through Ramsey spectroscopy, we detect the change of the effective dipolar field generated by the control NV spin prepared in different dressed states. To observe the change of interaction dynamics, we then deploy spin-lock-based polarization transfer measurements via a Hartmann-Hahn matching condition between two NV spins in different dressed states. We perform simulations that indicate the promise for this robust scheme to control the distribution of interaction strengths in strongly-interacting spin systems, including interaction strength homogenization in a spin ensemble, which can be a valuable tool for studying non-equilibrium quantum phases and generating high fidelity multi-spin correlated states for quantum-enhanced sensing.

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