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Creating heralded hyper-entangled photons using Rydberg atoms

机译:使用rydberg原子创建预示着的超缠结光子

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摘要

Abstract Entangled photon pairs are a fundamental component for testing the foundations of quantum mechanics, and for modern quantum technologies such as teleportation and secured communication. Current state-of-the-art sources are based on nonlinear processes that are limited in their efficiency and wavelength tunability. This motivates the exploration of physical mechanisms for entangled photon generation, with a special interest in mechanisms that can be heralded, preferably at telecommunications wavelengths. Here we present a mechanism for the generation of heralded entangled photons from Rydberg atom cavity quantum electrodynamics (cavity QED). We propose a scheme to demonstrate the mechanism and quantify its expected performance. The heralding of the process enables non-destructive detection of the photon pairs. The entangled photons are produced by exciting a rubidium atom to a Rydberg state, from where the atom decays via two-photon emission (TPE). A Rydberg blockade helps to excite a single Rydberg excitation while the input light field is more efficiently collectively absorbed by all the atoms. The TPE rate is significantly enhanced by a designed photonic cavity, whose many resonances also translate into high-dimensional entanglement. The resulting high-dimensionally entangled photons are entangled in more than one degree of freedom: in all of their spectral components, in addition to the polarization—forming a hyper-entangled state, which is particularly interesting in high information capacity quantum communication. We characterize the photon comb states by analyzing the Hong-Ou-Mandel interference and propose proof-of-concept experiments.
机译:摘要纠缠的光子对是测试量子力学基础的基本组件,以及用于传送和安全通信等现代量子技术。目前的最先进的来源基于其效率和波长可调性的非线性过程。这激励探索缠结光子生成的物理机制,具有可以预示的机制的特殊兴趣,优选地在电信波长处。在这里,我们提出了一种从Rydberg原子腔量子电动力学(腔QED)的缠结缠结光子的产生机制。我们提出了一种计划来证明机制并量化其预期的绩效。该过程的甲状腺使得能够进行非破坏性检测光子对。通过将铷原子激发到rydberg状态,从原子衰变通过双光子发射(TPE)来制备缠绕的光子。 Rydberg封锁有助于激发单个Rydberg激励,而输入光场更有效地被所有原子吸收。设计的光子腔显着增强了TPE速率,其许多共振也转化为高维缠结。由此产生的高尺寸缠结的光子在多个自由度中缠结:在所有光谱分量中,除了形成超纠缠状态之外,在高信息容量量子通信中特别有趣。通过分析红欧曼德尔干扰并提出概念证明实验,表征了光子梳状状态。

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