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Development of High-Q Photonic Nanocavity Using Two-Dimensional Photonic Crystal Slabs

机译:利用二维光子晶体平板开发高Q光子纳米腔

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摘要

Strong confinement of light in an ultra-small cavity of optical wavelength dimensions is important for a variety of scientific and engineering fields. Ultra-small and high-resolution filters, biosensors, low-threshold nanolasers, single-photon emitters for quantum communications, optical memories, photonic chips, etc. can be realized using a high-Q photonic nanocavity in which strong light-matter interactions occur. However, such a cavity is difficult to construct because radiation loss increases in inverse proportion to size of the cavity. Kyoto University and Sumitomo Electric have found an important design rule that light should be confined gently (like a perfect gaussian curve) in order to obtain high-Q factor while maintaining a very small modal volume V, According to this rule, the authors have succeeded in realizing a photonic cavity with both high Q and very small modal volume V, using a two-dimensional photonic crystal slab. The value of Q / V, which is a figure of merit of photonic nanocavity, is larger than that of any other cavities ever reported in previous works.
机译:将光严格限制在光学波长尺寸的超小腔中对于许多科学和工程领域都很重要。使用高Q光子纳米腔可以实现超小且高分辨率的滤光片,生物传感器,低阈值纳米激光,用于量子通信的单光子发射器,光学存储器,光子芯片等,其中发生强烈的光-质相互作用。然而,由于辐射损耗与腔的尺寸成反比地增加,因此难以构造这种腔。京都大学和住友电气公司发现了一个重要的设计规则,即在保持很小的模态体积V的同时,应将光柔和地限制(像一条完美的高斯曲线),以便获得高Q值。使用二维光子晶体平板来实现具有高Q和非常小模态体积V的光子腔。 Q / V的值是光子纳米腔的品质因数,比以前的工作中报道的任何其他腔的值都要大。

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