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Slow light and chromatic temporal dispersion in photonic crystal waveguides using femtosecond time of flight

机译:使用飞秒飞行时间的光子晶体波导中的慢光和色时间色散

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摘要

Abstract: We report time-of-flight experiments on photonic-crystal waveguide structures using optical Kerr gating of a femtosecond white-light supercontinuum. These photonic-crystal structures, based on engineered silicon nitride slab waveguides, possess broadband low-loss guiding properties, allowing the group velocity dispersion of optical pulses to be directly tracked as a function of wavelength. This dispersion is shown to be radically disrupted by the spectral band gaps associated with the photonic-crystal periodicity. Increased time-of-flight effects, or “slowed light,” are clearly observed at the edges of band gaps in agreement with two-dimensional plane-wave theoretical models of group velocity dispersion. A universal model for slow light in such photonic crystals is proposed, which shows that slow light is controlled predominantly by the detuning from, and the size of, the photonic band gaps. Slowed light observed up to time delays of 1 ps, corresponds to anomalous dispersion of 3.5 ps/nm per mm of the photonic crystal structure. From the decreasing intensity of timegated slow light as a function of time delay, we estimate the characteristic losses of modes which are guided in the spectral proximity of the photonic band gaps.
机译:摘要:我们报告了飞秒白光超连续谱的光学克尔门控技术对光子晶体波导结构的飞行时间实验。这些基于工程氮化硅平板波导的光子晶体结构具有宽带低损耗导引特性,可以根据波长直接跟踪光脉冲的群速度色散。该色散被与光子晶体周期性相关的光谱带隙彻底破坏。与组速度色散的二维平面波理论模型相一致,在带隙的边缘清楚地观察到了飞行时间增加的影响,即“慢光”。提出了一种在此类光子晶体中的慢光通用模型,该模型表明,慢光主要受光子带隙的失谐及其大小控制。直到1 ps的时间延迟观察到的慢速光对应于每毫米光子晶体结构3.5 ps / nm的异常色散。从随时间变化的延时慢光强度的降低,我们估算了在光子带隙的光谱接近度中导引的模的特征损耗。

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