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Design considerations for an intense source of entangled photons

机译:强烈纠缠光子源的设计考虑

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摘要

Parametric down conversion permits the generation of entangled photon pairs. However, the production rate is unfortunately very low, typically with nine to ten orders of magnitude between input and output power. A combination of approaches is considered to significantly enhance the overall production rate. The use of large crystals simply improves the production rate by increasing the interaction length, as does the use of beam-folding optics. Since the produced entangled photon pairs have twice the wavelength of the pump beam, the use of "hot" and "cold" mirrors can be used to redirect unused pump power back into the crystal. Analysis of these approaches is used to indicate a potential improvement of six orders of magnitude. Practical design limitations such as the rejection of waste heat, currently available crystal dimensions, and differential walkoff of correlated photons due to birefringence are considered. Application to type I and type II parametric down conversion and walkoff compensation techniques are detailed. Application to an entangled optical communication link and its use over astronomical distances are outlined.
机译:参数下转换允许生成纠缠的光子对。但是,不幸的是生产率很低,通常在输入和输出功率之间为九到十个数量级。多种方法的组合被认为可以显着提高整体生产率。大型晶体的使用与光束折叠光学系统的使用一样,通过增加相互作用长度来简单地提高生产率。由于产生的纠缠光子对具有泵浦光束波长的两倍,因此可以使用“热”镜和“冷”镜将未使用的泵浦功率重定向回晶体。对这些方法的分析用于表明可能会提高六个数量级。考虑了实际的设计限制,例如废热的排阻,当前可用的晶体尺寸以及由于双折射而导致的相关光子的微分偏离。详细介绍了I型和II型参数下变频和失步补偿技术的应用。概述了纠缠光通信链路的应用及其在天文距离上的使用。

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