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Numerical study on metallic photonic band-gap structures for terahertz waveguiding

机译:太赫兹波导金属光子带隙结构的数值研究

摘要

This work focuses on numerical calculations of metallic photonic band-gap structures. Photonic crystals are man-made structures that reflect electromagnetic waves whose frequency value falls within the photonic crystal band-gap. Metallic photonic crystals have been used due to certain advantages over dielectric crystals, which can be relevant for guiding THz radiations. The THz range is localised between microwave and optical frequency regions. THz frequencies have been studied for possible applications in many areas such as, imaging, security, medical, material characterization, spectroscopy to name a few. Metallic photonic crystals are used for various THz waveguides’ designs, with the aim of sustaining high power THz transmission.ududThe transmission properties as well as dispersion relations of metallic photonic crystal are investigated by means of Finite Element Method. Throughout the study, FEM results are often compared to some other methods in order to validate the calculation steps in our modelling process and to assess the boundary conditions. In the simulations frequency dependency and losses have been taken into account.ududDispersion diagrams and guided modes have been studied to achieve further understanding on the transmission characteristics of metallic photonic crystal waveguides. Excellent agreement has been obtained from the comparison of dispersion diagrams and the transmission spectra of waveguides. Special care has been paid to achieve optimized design parameters that give wide bandwidths with high transmission levels. Other passive components have also been studied such as filters, bends and splitters. In order to improve their transmission characteristics, several designs have been investigated. Consistently high transmission levels have been achieved with our waveguides over a wide range of THz frequencies. It was possible to provide innovative designs for the bend and linear waveguides. The transmission spectra of these waveguides have been analysed and a deep understanding of the metallic photonic crystal waveguide has been achieved.
机译:这项工作着重于金属光子带隙结构的数值计算。光子晶体是反射电磁波的人造结构,电磁波的频率值落在光子晶体的带隙内。由于与介电晶体相比具有某些优势,因此已使用金属光子晶体,这对于引导THz辐射可能是重要的。 THz范围位于微波和光学频率区域之间。已经研究了太赫兹频率在许多领域的可能应用,例如成像,安全性,医疗,材料表征,光谱学等。金属光子晶体用于各种THz波导的设计,以维持高功率THz传输。 ud ud通过有限元方法研究了金属光子晶体的传输特性和色散关系。在整个研究过程中,经常将FEM结果与其他方法进行比较,以验证我们建模过程中的计算步骤并评估边界条件。在仿真中,已经考虑了频率依赖性和损耗。 ud ud研究了色散图和导模,以进一步了解金属光子晶体波导的传输特性。通过比较色散图和波导的传输光谱,已经获得了极好的一致性。为了获得优化的设计参数,需要特别注意,这些参数可以提供高带宽,高传输水平。还研究了其他无源元件,例如过滤器,折弯器和分离器。为了改善其传输特性,已经研究了几种设计。我们的波导在太赫兹频率的广泛范围内始终达到了很高的传输水平。可以为弯曲和线性波导提供创新的设计。分析了这些波导的透射光谱,并且对金属光子晶体波导有了深入的了解。

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    Degirmenci Elif;

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  • 年度 2012
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  • 原文格式 PDF
  • 正文语种 en
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