论文标题
中性原子处理器量子网络的架构
An architecture for quantum networking of neutral atom processors
论文作者
论文摘要
开发用于远程处理器远程纠缠的网络是量子信息科学的重要挑战。我们建议和分析一个两种物种体系结构,以基于与快速光学元件的光光原子量子阵列的集成,用于中性原子量子计算机的远程纠缠。一种原子物种用于原子 - 光子纠缠,而其他物种则提供局部加工。我们比较了两种光学方法的远程纠缠生成的可实现速率:带有镜头的自由空间光子收集和近乎集中的,长的工作距离谐振腔。腔内激光冷却和捕获可消除从源区域机械传输原子的需求,从而可以快速重复速率。使用腔体细化的优化值,远程纠缠生成率$> 10^3〜 \ rm s^{ - 1} $用于实验可行的参数。
Development of a network for remote entanglement of quantum processors is an outstanding challenge in quantum information science. We propose and analyze a two-species architecture for remote entanglement of neutral atom quantum computers based on integration of optically trapped atomic qubit arrays with fast optics for photon collection. One of the atomic species is used for atom-photon entanglement, and the other species provides local processing. We compare the achievable rates of remote entanglement generation for two optical approaches: free space photon collection with a lens and a near-concentric, long working distance resonant cavity. Laser cooling and trapping within the cavity removes the need for mechanical transport of atoms from a source region, which allows for a fast repetition rate. Using optimized values of the cavity finesse, remote entanglement generation rates $> 10^3~\rm s^{-1}$ are predicted for experimentally feasible parameters.