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High-Q optical nanocavities in planar photonic crystals

机译:平面光子晶体中的高Q光学纳米腔

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摘要

Planar photonic crystals are constructed by combining two-dimensional periodic structures with high refractive index contrast slabs. By suppressing the loss in these structures due to imperfect confinement in the third dimension, one can fully take advantage of their relatively simple fabrication, and achieve the functionality of three-dimensional photonic crystals. One of the greatest challenges in photonic crystal research is a construction of optical nanocavities with small mode volumes and large quality factors, for efficient localization of light. Beside standard applications of these structures (such as lasers or filters), they can potentially be used for cavity QED experiments, or as building blocks for quantum networks. This paper will address our theoretical and experimental results on optical nanocavities based on planar photonic crystals, with mode volumes as small as one half of cubic wavelength of light in material, and with Q factors even larger than 1 x 10~4.
机译:平面光子晶体是通过将二维周期性结构与高折射率对比平板组合而成的。通过抑制由于不完全限制在第三维中而在这些结构中造成的损耗,人们可以充分利用它们相对简单的制造优势,并实现三维光子晶体的功能。光子晶体研究中的最大挑战之一是构造具有小模量和大品质因数的光学纳米腔,以实现光的有效定位。除了这些结构(例如激光器或滤光片)的标准应用之外,它们还可能用于腔体QED实验或作为量子网络的构建基块。本文将介绍我们基于平面光子晶体的光学纳米腔的理论和实验结果,其模式体积小至材料中光立方波长的一半,Q因子甚至大于1 x 10〜4。

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