论文标题
基于单光子散射的片上旋转式纠缠
On-chip spin-photon entanglement based on single-photon scattering
论文作者
论文摘要
光子和固态旋转之间的片上量子门的实现是量子信息处理器的关键构件,例如,启用分布式量子计算,其中远程量子寄存器通过飞行光子互连。纳米结构中集成的自组装量子点是这种努力的最有前途的系统之一,这要归功于它们的近乎免费的光子发射器耦合和快速的自发发射速率。在这里,我们演示了传入光子和固定量子点旋转值之间的片上纠缠栅极。该栅极基于带有波导剂量量子点的时轴编码光子的顺序散射,并在子微秒次时尺度上运行;两个数量级的速度比其他平台快。检测反射光子的预言使栅极富达完全免疫到发射极的光谱徘徊。这些结果代表了实现能够在量子网络和量子中继器中所需的量子纠缠产生和芯片量子逻辑的量子节点的主要步骤。
The realization of on-chip quantum gates between photons and solid-state spins is a key building block for quantum-information processors, enabling, e.g., distributed quantum computing, where remote quantum registers are interconnected by flying photons. Self-assembled quantum dots integrated in nanostructures are one of the most promising systems for such an endeavor thanks to their near-unity photon-emitter coupling and fast spontaneous emission rate. Here we demonstrate an on-chip entangling gate between an incoming photon and a stationary quantum-dot spin qubit. The gate is based on sequential scattering of a time-bin encoded photon with a waveguide-embedded quantum dot and operates on sub-microsecond timescale; two orders of magnitude faster than other platforms. Heralding on detection of a reflected photon renders the gate fidelity fully immune to spectral wandering of the emitter. These results represent a major step in realizing a quantum node capable of both photonic entanglement generation and on-chip quantum logic, as demanded in quantum networks and quantum repeaters.