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Controlled cavity QED and single-photon emission using a photonic-crystal waveguide cavity system

机译:使用光子晶体波导腔系统控制腔QED和单光子发射

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摘要

We introduce a photonic crystal waveguide-cavity system for controlling single-photon cavity quantum electrodynamics (QED). Exploiting Bloch mode analysis and medium-dependent Green function techniques we demonstrate that the propagation of single photons can be accurately described analytically for integrated periodic waveguides with little more than four unit cells, including an output coupler. We verify our analytical approach by comparing to rigorous numerical calculations for a range of photonic crystal waveguide lengths. The semiconductor-based nanophotonics system allows one to nanoengineer various regimes of cavity QED with unprecedented control. We demonstrate maximum Purcell factors of greater than 500 and on-chip single-photon beta factors of about 80% efficiency. Both weak and strong-coupling regimes are investigated, and the important role of waveguide length on the output emission spectra is shown for vertically emitted emission and output waveguide emission.
机译:我们介绍了一种用于控制单光子腔量子电动力学(QED)的光子晶体波导腔系统。利用Bloch模式分析和依赖于介质的格林函数技术,我们证明,对于具有不超过四个单位晶胞(包括输出耦合器)的集成周期波导,可以准确地分析地描述单个光子的传播。通过与一系列光子晶体波导长度的严格数值计算进行比较,我们验证了我们的分析方法。基于半导体的纳米光子学系统使人们能够以前所未有的控制能力对腔体QED的各种方案进行纳米工程设计。我们展示了大于500的最大Purcell因子和约80%效率的片上单光子β因子。研究了弱耦合和强耦合两种情况,并显示了波导长度对垂直发射和输出波导发射在输出发射光谱中的重要作用。

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