论文标题
平行的单发测量和对衍射极限以下固态旋转的相干控制
Parallel single-shot measurement and coherent control of solid-state spins below the diffraction limit
论文作者
论文摘要
固态旋转缺陷是量子科学和技术的有前途的平台,已经实现了各种量子信息处理的关键组件的证明,尤其是在量子网络领域。建立具有固态缺陷的大型量子系统的一个突出挑战是实现了对具有纳米级分离的多种缺陷的高保真控制,这是实现多标准逻辑和纠缠状态的强大自旋旋转相互作用所必需的。在这项工作中,我们在实验上证明了一种光学频域多路复用技术,可以在单个硅光子晶体的单波长内,允许高保真初始化和六个稀土(ER $^{3+} $)离子的单发旋转测量。我们还使用光学AC stark Shift展示了对相干自旋旋转的次波长控制。所证明的方法可以缩放到具有任意分离的大量离子,这是朝着实现与量子信息处理和多体动力学基础研究的应用的强烈相互作用的原子缺陷阵列迈出的重要一步。
Solid-state spin defects are a promising platform for quantum science and technology, having realized demonstrations of a variety of key components for quantum information processing, particularly in the area of quantum networks. An outstanding challenge for building larger-scale quantum systems with solid-state defects is realizing high-fidelity control over multiple defects with nanoscale separations, which is required to realize strong spin-spin interactions for multi-qubit logic and the creation of entangled states. In this work, we experimentally demonstrate an optical frequency-domain multiplexing technique, allowing high-fidelity initialization and single-shot spin measurement of six rare earth (Er$^{3+}$) ions, within the sub-wavelength volume of a single, silicon photonic crystal cavity. We also demonstrate sub-wavelength control over coherent spin rotations using an optical AC Stark shift. The demonstrated approach may be scaled to large numbers of ions with arbitrarily small separation, and is a significant step towards realizing strongly interacting atomic defect arrays with applications to quantum information processing and fundamental studies of many-body dynamics.