论文标题
使用波导量子电动力学的按需定向微波光子发射
On-Demand Directional Microwave Photon Emission Using Waveguide Quantum Electrodynamics
论文作者
论文摘要
非本地计算节点之间的路由量子信息是量子处理器扩展网络的基础。任意节点之间的量子信息传递通常是由它们之间传播的光子介导的,或者是通过在附近节点偶联的。该实用程序由发射极,传播通道和接收器的类型确定。涉及传播微波光子的常规方法由于光子损失而具有有限的保真度,并且通常是单向的,而使用直接谐振耦合的架构原则上是双向的,但通常只能容纳几个局部节点。在这里,我们证明了高保真性,按需,定向,微波光子发射。我们使用一个人工分子组成的人工分子强烈耦合到双向波导,从而有效地产生了手性微波波导。来自分子的光子发射途径之间的量子干扰会产生单个光子,这些光子在选择的方向上有选择地传播。该电路还将能够吸收光子,使其适用于在可扩展的量子网络中构建互连。
Routing quantum information between non-local computational nodes is a foundation for extensible networks of quantum processors. Quantum information transfer between arbitrary nodes is generally mediated either by photons that propagate between them, or by resonantly coupling nearby nodes. The utility is determined by the type of emitter, propagation channel, and receiver. Conventional approaches involving propagating microwave photons have limited fidelity due to photon loss and are often unidirectional, whereas architectures that use direct resonant coupling are bidirectional in principle, but can generally accommodate only a few local nodes. Here we demonstrate high-fidelity, on-demand, directional, microwave photon emission. We do this using an artificial molecule comprising two superconducting qubits strongly coupled to a bidirectional waveguide, effectively creating a chiral microwave waveguide. Quantum interference between the photon emission pathways from the molecule generates single photons that selectively propagate in a chosen direction. This circuit will also be capable of photon absorption, making it suitable for building interconnects within extensible quantum networks.