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Tunable flat band slow light in reconfigurable photonic crystal waveguides based on magnetic fluids

机译:基于磁流体的可重构光子晶体波导中的可调谐平带慢光

摘要

A kind of two-dimensional photonic crystal line-defect waveguide with 45 -rotated square lattice is proposed to present slow light phenomena. Infiltrating the photonic crystal waveguide with appropriate magnetic fluids can generate very wide flat bands of guided modes, which give rise to the excellent slow light properties. The bandwidth centered at λ0=1550 nm of the designed W1 waveguide is considerably large (around 54 nm). The obtained group velocity dispersion β2 within the bandwidth is ultralow (varying from -2118a/2πc2 to 1845a/2πc2, where a and c are the period of the lattice and the light speed in vacuum, respectively). Simultaneously, the normalized delay-bandwidth product is relatively large compared with other works. Reconfiguring the photonic crystal waveguide with magnetic fluids of different concentrations can remarkably tune the slow light parameters and the trade-off between them, while the type of magnetic nanoparticles constituting the magnetic fluids negligibly affect the slow light properties. The explicit linear variation of the slow light parameters with the magnetic fluid concentration is convenient for the practical tuning.
机译:提出了一种具有45°旋转方格的二维光子晶体线缺陷波导,以呈现慢光现象。用适当的磁流体渗透光子晶体波导可以产生很宽的导模平坦带,从而产生出色的慢光性能。设计的W1波导的以λ0= 1550 nm为中心的带宽非常大(约54 nm)。在带宽内获得的群速度色散β2非常低(从-2118a /2πc2到1845a /2πc2,其中a和c分别是晶格的周期和真空中的光速)。同时,与其他工作相比,归一化的延迟带宽乘积相对较大。用不同浓度的磁性流体重新配置光子晶体波导可以显着调整慢光参数及其之间的权衡,而构成磁性流体的磁性纳米粒子的类型对慢光特性的影响可忽略不计。慢光参数随磁流体浓度的明确线性变化便于实际调整。

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