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Quantum State Engineering of Light with Continuous-wave Optical Parametric Oscillators

机译:连续波光学参量振荡器的光量子态工程

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摘要

Engineering non-classical states of the electromagnetic field is a central quest for quantum optics1,2. Beyond their fundamental significance, such states are indeed the resources for implementing various protocols, ranging from enhanced metrology to quantum communication and computing. A variety of devices can be used to generate non-classical states, such as single emitters, light-matter interfaces or non-linear systems3. We focus here on the use of a continuous-wave optical parametric oscillator3,4. This system is based on a non-linear χ2 crystal inserted inside an optical cavity and it is now well-known as a very efficient source of non-classical light, such as single-mode or two-mode squeezed vacuum depending on the crystal phase matching. Squeezed vacuum is a Gaussian state as its quadrature distributions follow a Gaussian statistics. However, it has been shown that number of protocols require non-Gaussian states5. Generating directly such states is a difficult task and would require strong χ3 non-linearities. Another procedure, probabilistic but heralded, consists in using a measurement-induced non-linearity via a conditional preparation technique operated on Gaussian states. Here, we detail this generation protocol for two non-Gaussian states, the single-photon state and a superposition of coherent states, using two differently phase-matched parametric oscillators as primary resources. This technique enables achievement of a high fidelity with the targeted state and generation of the state in a well-controlled spatiotemporal mode.
机译:电磁场的工程非经典状态是量子光学 1,2 的中心任务。除了其基本意义之外,这些状态确实是用于实现各种协议的资源,从增强的计量到量子通信和计算,应有尽有。可以使用多种设备来生成非经典状态,例如单个发射器,光物质界面或非线性系统 3 。我们在这里集中讨论连续波光学参量振荡器 3,4 的使用。该系统基于插入光学腔内的非线性χ 2 晶体,现已众所周知,它是非经典光源的一种非常有效的光源,例如单模或双模。模式取决于晶体的相位匹配来压缩真空。压缩真空是高斯状态,因为其正交分布遵循高斯统计。但是,事实表明,许多协议需要非高斯状态 5 。直接生成这样的状态是一项艰巨的任务,并且需要强大的χ 3 非线性。另一个程序是概率性的,但预示着通过对高斯状态进行操作的条件准备技术来使用由测量引起的非线性。在这里,我们使用两个不同的相位匹配参数振荡器作为主要资源,详细介绍了针对两个非高斯状态,单光子状态和相干状态叠加的生成协议。该技术使得能够以良好的时空模式以目标状态实现高保真度并生成状态。

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