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Near-field characterization of low-loss photonic crystal waveguides

机译:低损耗光子晶体波导的近场表征

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A scanning near-field optical microscope is used to directly map the propagation of light in the wavelength range of 1500-1630 nm along straight photonic crystal waveguides (PCWs) fabricated on silicon-on-insulator wafers. The PCWs were formed by removing a single row of holes in the triangular 428-nm-period lattices with different filling factors (0.76 and 0.82) and connected to access ridge waveguides. Using the near-field optical images we investigate the light propagation along PCWs for TM and TE polarizations (the electric field is perpendicular/parallel to the sample surface). Efficient guiding (for both samples) of the TM-polarized radiation is observed in the whole range of laser tunability. For TE polarization, the efficient guiding is limited to the wavelengths shorter than 1552 or 1570 nm for the PCW with the filling factor of 0.76 or 0.82, respectively. For longer wavelengths, we observe drastic and rapid deterioration of the waveguiding and PCW mode confinement, ending up with the complete disappearance of the PCW mode once the wavelength exceeds the cutoff value by merely 2 nm. Using averaged cross sections of the intensity distributions along the PCW axis, the propagation loss is evaluated and found to be in good agreement with the corresponding transmission spectra. Considering spatial frequency spectra of the intensity variations along the PCW axis, we determine (for both polarizations) the dispersion of the PCW mode propagation constant and, thereby, the mode group and phase velocities.
机译:扫描近场光学显微镜用于直接绘制波长在1500至1630 nm之间的光沿着绝缘体上硅片上制造的直线光子晶体波导(PCW)的传播情况。通过去除具有不同填充系数(0.76和0.82)的428nm三角形三角形晶格中的单排孔并连接到接入脊形波导来形成PCW。使用近场光学图像,我们研究了沿PCW沿TM和TE偏振(电场垂直/平行于样品表面)的光传播。在激光可调性的整个范围内,都能观察到TM偏振辐射的有效引导(对于两个样品)。对于TE偏振,对于PCW,有效的引导限制在短于1552 nm或1570 nm的波长处,填充因子分别为0.76或0.82。对于更长的波长,我们观察到波导和PCW模式限制的急剧而迅速的恶化,最终,一旦波长超过截止值仅2 nm,PCW模式就会完全消失。使用沿PCW轴的强度分布的平均横截面,可以评估传播损耗,发现其与相应的透射光谱非常一致。考虑沿PCW轴强度变化的空间频谱,我们(对于两个极化)确定PCW模式传播常数的色散,从而确定模式组和相速度。

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