论文标题
光子晶体光学参数振荡器
Photonic Crystal Optical Parametric Oscillator
论文作者
论文摘要
数十年来,设备的微型化一直是微电子和光子学的主要目标,旨在旨在较密集的整合,功能增强和急剧降低功耗。目前,纳米光子学的进展与信息和通信,大脑启发的计算,医学和感应和量子信息所必需的概念和技术的进步有关。在所有纳米结构中,半导体光子晶体(PHC)占据着明显的位置,因为它们可以制造准最终光腔。低阈值激光二极管或拉曼激光器,低功耗的光学记忆,有效的单光子源或单个光子量子门是其能力的令人印象深刻的例子。我们报告了在电信波长限制光学模式下,在电信波长上进行了约20微米长的PHC半导体光学参数振荡器(OPO)。泵功率阈值在0.2 mW以下测量。通过将纳米腔的高Q模式调整为三个谐振构型,通过将KERR光学四波混合的急剧增强到达参数振荡。这种相干光的范式来源的微型化为量子光学电路,高效的非线性挤压光或纠缠光子对的密集整合铺平了道路。
Miniaturization of devices has been a primary objective in microelectronics and photonics for decades, aiming at denser integration, enhanced functionalities and drastic reduction of power consumption. Headway in nanophotonics is currently linked to the progress in concepts and technologies necessary for applications in information and communication, brain inspired computing, medicine and sensing and quantum information. Amongst all nanostructures, semiconductor photonic crystals (PhCs) occupy a prominent position as they enable the fabrication of quasi ultimate optical cavities. Low threshold laser diodes or Raman lasers , low power consuming optical memories , efficient single photon sources or single photon quantum gates are impressive examples of their capabilities. We report the demonstration of about 20 micron long PhC semiconductor optical parametric oscillator (OPO) at telecom wavelength exploiting nearly diffraction limited optical modes. The pump power threshold is measured below 0.2 mW. Parametric oscillation was reached through the drastic enhancement of Kerr optical Four Wave Mixing by thermally tuning the high Q modes of a nanocavity into a triply resonant configuration. Miniaturization of this paradigmatic source of coherent light paves the way for quantum optical circuits, dense integration of highly efficient nonlinear sources of squeezed light or entangled photons pairs.