量子纠缠
物理
实现(概率)
光子学
量子
光子
自发参量下转换
参数统计
非线性系统
光子纠缠
联轴节(管道)
量子信息
相(物质)
量子力学
量子网络
量子光学
拓扑(电路)
量子态
量子技术
量子成像
非线性光学
量子信息科学
电子线路
量子传感器
功率分配器和定向耦合器
简单(哲学)
放大器
量子信道
量子隐形传态
光学
W州
光参量放大器
量子信息处理
作者
Frank Setzpfandt,Alexander S. Solntsev,James Titchener,Che Wen Wu,Chunle Xiong,Roland Schiek,Thomas Pertsch,Dragomir N. Neshev,Andrey A. Sukhorukov
标识
DOI:10.1002/lpor.201500216
摘要
Abstract The on‐chip integration of quantum light sources has enabled the realization of complex quantum photonic circuits. However, for the practical implementation of such circuits in quantum information applications, it is crucial to develop sources delivering entangled quantum photon states with on‐demand tunability. Here we propose and experimentally demonstrate the concept of a widely tunable quantum light source based on spontaneous parametric down‐conversion in a simple nonlinear directional coupler. We show that spatial photon‐pair correlations and entanglement can be reconfigured on‐demand by tuning the phase difference between the pump beams and the phase mismatch inside the structure. We experimentally demonstrate the generation of split states, robust N00N states, various intermediate regimes and biphoton steering on a single chip. Furthermore we theoretically investigate other regimes allowing all‐optically tunable generation of all Bell states and flexible control of path‐energy entanglement. Such wide‐range capabilities of a structure comprised of just two coupled nonlinear waveguides are attributed to the intricate interplay between linear coupling and nonlinear phase matching. This scheme provides an important advance towards the realization of reconfigurable quantum circuitry. image
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