论文标题
可扩展量子中继器的电场可编程旋转阵列
Electric-Field Programmable Spin Arrays for Scalable Quantum Repeaters
论文作者
论文摘要
量子网络技术所需的数千个量子发射器的大规模控制受到当前微波技术固有的跨言语的限制。在这里,我们提出了一个基于可编程电极阵列中密集包装的钻石颜色中心(CCS)的量子中继器架构。这个“电场可编程旋转阵列”(EFPSA)可实现低速旋转控制,该CC具有较低的交叉言论和功率耗散。 EFPSA集成在慢轻型波导中,以进行有效的光学耦合,用作光学介导的纠缠的量子界面。与路由树设计相比,我们评估了EFPSA体系结构的性能,并显示成数千个Qubits制度的纠缠产生率提高。我们的结果实现了可扩展网络的密集量子发射极阵列的高保真度控制。
Large scale control over thousands of quantum emitters desired by quantum network technology is limited by power consumption and cross-talk inherent in current microwave techniques. Here we propose a quantum repeater architecture based on densely-packed diamond color centers (CCs) in a programmable electrode array. This 'electric-field programmable spin array' (eFPSA) enables high-speed spin control of individual CCs with low cross-talk and power dissipation. Integrated in a slow-light waveguide for efficient optical coupling, the eFPSA serves as a quantum interface for optically-mediated entanglement. We evaluate the performance of the eFPSA architecture in comparison to a routing tree design and show increased entanglement generation rate into thousands of qubits regime. Our results enable high fidelity control of dense quantum emitter arrays for scalable networking.