物理
量子位元
量子纠缠
纠缠蒸馏
光子纠缠
贝尔州
光子
超导量子计算
群集状态
W州
量子力学
量子计算机
量子隐形传态
光子学
量子网络
量子
作者
Srujan Meesala,David P. Lake,Steven Wood,Piero Chiappina,Changchun Zhong,Andrew D. Beyer,Matthew D. Shaw,Liang Jiang,Oskar Painter
标识
DOI:10.1103/physrevx.14.031055
摘要
Entanglement is an extraordinary feature of quantum mechanics. Sources of entangled optical photons were essential to test the foundations of quantum physics through violations of Bell’s inequalities. More recently, entangled many-body states have been realized via strong nonlinear interactions in microwave circuits with superconducting qubits. Here, we demonstrate a chip-scale source of entangled optical and microwave photonic qubits. Our device platform integrates a piezo-optomechanical transducer with a superconducting resonator which is robust under optical illumination. We drive a photon-pair generation process and employ a dual-rail encoding intrinsic to our system to prepare entangled states of microwave and optical photons. We place a lower bound on the fidelity of the entangled state by measuring microwave and optical photons in two orthogonal bases. This entanglement source can directly interface telecom wavelength time-bin qubits and gigahertz frequency superconducting qubits, two well-established platforms for quantum communication and computation, respectively. Published by the American Physical Society 2024
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