用于太赫兹成像和测试应用的宽带上盖FSS的设计

S. Singh, Abhishek Kumar Jha, M. Akhtar
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引用次数: 5

摘要

生物工程和太赫兹(THz)技术的最新进展激发了研究太赫兹辐射与生物制剂、分子和组织之间相互作用的兴趣。临床环境中的太赫兹成像和测试系统通常需要一个样品支架来容纳新切除的离体恶性标本以进行诊断。在临床试验中使用的传统标本架继承了材料损耗,最终使太赫兹信号通过被测样品的传输恶化。本文提出了一种工作在太赫兹频率下的近乎完美透明的超层频率选择表面(FSS),用于改进太赫兹成像和测试应用。在300 ~ 760 GHz的频率范围内,所设计的上盖FSS结构的典型衰减小于1 dB。采用基于有限积分技术(FIT)的CST STUDIO SUITE计算电磁求解器对该结构进行了数值测试,然后使用基于有限元法(FEM)的Ansoft HFSS求解器对所得结果进行了验证。在正常照明下,所提出设计的带外抑制优于- 25 dB。结果表明,所设计的叠层FSS对偏振不敏感,并能在有限带宽内作为斜入射的完美透明窗口。对所提出的上层FSS结构的详细研究表明,所提出的结构是一种可行的选择,可以取代传统的样品夹,以更好地通过测试介质传输太赫兹波。
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Design of broadband superstrate FSS for terahertz imaging and testing applications
Recent advancement in bioengineering and terahertz (THz) technology has stimulated interest in studying the interaction between THz radiation and biological agents, molecules and tissues. The THz imaging and testing system in clinical settings usually needs a samples holder to hold the freshly excised ex-vivo maligned specimen for diagnosis purposes. The conventional specimen holder being used in clinical trials has inherited material losses that eventually deteriorate the transmission of THz signal through the sample under test. In this article, a nearly perfect transparent superstrate frequency selective surface (FSS) operating at THz frequency is proposed for the improved THz imaging and testing applications. The designed superstrate FSS structure shows a typical attenuation of less than 1 dB for the frequency range 300−760 GHz. This superstrate FSS structure is numerically tested with the computational electromagnetic solver, the CST STUDIO SUITE, based on finite integration technique (FIT) and later the obtained results are verified using another solver, the Ansoft HFSS, based on the finite element method (FEM). The out of band rejection for the proposed design is found to be better than −25 dB for normal illumination. It is found that the designed superstrate FSS is polarization insensitive and works as a perfect transparent window for oblique incidence over a limited bandwidth. The detailed study of the proposed superstrate FSS structure demonstrates that the proposed structure is a viable choice and may replace the conventional sample holders for better transmission of THz waves through the test medium.
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