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Nano-Photonic Crystal Waveguides for Ultra-Compact Tunable True Time Delay Lines

机译:纳米光子晶体波导,用于超紧凑型可调真时延线

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Nanophotonics including photonic crystals promises to have a revolutionary impact on the landscape of photonics technology. Photonic crystal line defect waveguides show high group velocity dispersion and slow photon effect near transmission band edge. By using photonic crystal waveguides to build true time delay based phased array antenna or other optical signal processing systems, the length of the tunable true time delay lines can be dramatically reduced inversely proportional to group velocity dispersion in dispersion enhanced system architecture or reduced inversely proportional to group index in slow photon enhanced system architecture. The group index of the fabricated silicon photonic crystal line defect waveguide is experimentally demonstrated as high as 40 at optical wavelength around 1569 nm. The group velocity dispersion of the fabricated silicon photonic crystal line defect waveguide is as high as 50 psm·mm at wavelength around 1569 nm, which is more than 10~7 times the dispersion of the standard telecom fiber (D = 3 psm·km). Due to the integration nature of photonic crystals, system-on-chip integration of the true time delay modules can be easily achieved.
机译:包括光子晶体在内的纳米光子技术有望对光子技术领域产生革命性的影响。光子晶体线缺陷波导在传输带边缘附近表现出高的群速度色散和缓慢的光子效应。通过使用光子晶体波导来构建基于真实时间延迟的相控阵天线或其他光信号处理系统,可以在色散增强的系统架构中将可调谐真实时间延迟线的长度与群速度色散成反比,而与组速度色散成反比。慢光子增强系统体系结构中的组索引。实验证明,所制造的硅光子晶体线缺陷波导的群折射率在1569 nm左右的光波长下高达40。所制备的硅光子晶体线缺陷波导在1569 nm左右的波长处的群速度色散高达50 ps / nm·mm,是标准电信光纤色散的10〜7倍(D = 3 ps / mm)。 nm·km)。由于光子晶体的集成特性,可以轻松实现实时延时模块的片上系统集成。

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