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Resonant scattering and second-harmonic spectroscopy of planar photonic crystal microcavities

机译:平面光子晶体微腔的共振散射和二次谐波光谱

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摘要

The resonant modes of two-dimensional planar photonic crystal microcavities patterned in a free-standing InP slab are probed in a novel fashion using a long working distance microscope objective to obtain cross-polarized resonant scattering and second-harmonic spectra. We show that these techniques can be used to do rapid effective assays of large arrays of microcavities that do not necessarily contain resonant light-emitting layers. The techniques are demonstrated using microcavities comprised of single missing-hole defects in hexagonal photonic crystal hosts formed with elliptically shaped holes. These cavities typically support two orthogonally polarized resonant modes, and the resonant scattering and harmonic spectra are well fitted using a coherent sum of Lorentzian functions. The well-defined coherence between the two resonant features is explained in terms of a microscopic harmonic oscillator model. The relative merits of these techniques are quantitatively compared with the more commonly used cavity-enhanced photoluminescence technique.
机译:使用长工作距离显微镜物镜,以新颖的方式探测在独立的InP平板中构图的二维平面光子晶体微腔的共振模式,以获得交叉极化共振散射和二次谐波光谱。我们表明,这些技术可用于对不一定包含共振发光层的微腔大阵列进行快速有效的分析。通过在由椭圆形孔形成的六边形光子晶体主体中使用由单个缺失孔缺陷组成的微腔来证明该技术。这些腔通常支持两个正交极化的谐振模式,并且使用劳伦兹函数的相干总和很好地拟合了谐振散射和谐波频谱。用微观谐波振荡器模型解释了两个谐振特征之间定义明确的相干性。将这些技术的相对优点与更常用的腔增强光致发光技术进行了定量比较。

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