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Near-Infrared and Optical Beam Steering and Frequency Splitting in Air-Holes-in-Silicon Inverse Photonic Crystals

机译:空气孔硅反向光子晶体中的近红外和光束控制以及频率分裂

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摘要

We present the design of a dielectric inverse photonic crystal structure that couples line-defect waveguide propagating modes into highly directional beams of controllable directionality. The structure utilizes a triangular lattice made of air holes drilled in an infinitely thick Si slab, and it is designed for operation in the near-infrared and optical regime. The structure operation is based on the excitation and manipulation of dark dielectric surface states, in particular on the tailoring of the dark states’ coupling to outgoing radiation. This coupling is achieved with the use of properly designed external corrugations. The structure adapts and matches modes that travel through the photonic crystal and the free space. Moreover it facilitates the steering of the outgoing waves, is found to generate well-defined, spatially and spectrally isolated beams, and may serve as a frequency splitting component designed for operation in the near-infrared regime and in particular the telecom optical wavelength band. The design complies with the state-of-the-art Si nanofabrication technology and can be directly scaled for operation in the optical regime.
机译:我们介绍了将线缺陷波导传播模式耦合到可控方向性的高方向梁的介质逆光子晶体结构的设计。该结构利用由无限厚的Si板钻的气孔制成的三角形格子,它设计用于近红外和光学制度的操作。结构操作基于暗电介质表面状态的激励和操纵,特别是在暗状态与输出辐射的耦合的剪裁。使用适当设计的外部波纹实现该耦合。该结构适应并匹配穿过光子晶体和自由空间的模式。此外,它有助于输出波的转向,发现在近红外方格和特别是电信光波长带中设计用于操作的频率分割组件,并且可以用作频率分裂组件。该设计符合最先进的SI纳米制作技术,可以直接缩放光学制度。

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