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Computation and Analysis of Terahertz Wire Grid Polarizer Self-resonance Using Transmission Line Theory

机译:太赫兹线栅偏振器自谐振的传输线理论计算与分析

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A terahertz metal wire-grid polarizer on a low-loss dielectric (crystalline quartz) substrate was simulated using High Frequency Structure Simulator (HFSS) and modeled with equivalent-circuit theory. The transmittance of the polarizer was calculated for electromagnetic radiation at normal incidence from 100 to 1000 GHz for both s-polarization (perpendicular to the grid) and p-polarization (parallel to the grid). The phase difference in S_(21) between the HFSS input and output ports was calculated and plotted versus frequency and versus fill-factors of 0.3, 0.5, 0.7, 0.9, and 0.95 for both polarizations. Analysis of the S-polarized S_(21) shows that the phase-angle differences are all negative. This is interpreted as the phase of the current in the wire grid leading the phase of the voltage across the gaps, and thus the electric field across the gaps. This behavior was seen for all fill-factors. Therefore, a capacitive effect is exhibited by the wire-grid polarizer for S-polarization. Analysis of the P-polarization results show the phase angle differences are positive for fill-factors less than or equal to 0.9 and negative at the fill-factor of 0.95. Thus, the wire-grid current lags the gap voltage for P-polarization at fill-factors ≤ 0.90 (an inductive effect) while wire current leads the gap voltage at fill-factor = 0.95 (a capacitive effect). This behavior is the spatial analog of a parallel LC circuit.
机译:使用高频结构模拟器(HFS)模拟低损耗电介质(晶体石英)衬底上的太赫兹金属线栅极偏振器,并用等效电路理论建模。计算偏振器的透射率,用于在常规入射时从100至1000GHz的电磁辐射,用于S偏振(垂直于电网)和P偏振(平行于网格)。 HFSS输入和输出端口之间的S_(21)的相位差计算并绘制频率,而且填充因子为0.3,0.5,0.7,0.9和0.95的偏振。 S偏振S_(21)的分析表明相位角差是均为负的。这被解释为导线网格中的电流的相位,导致间隙两端电压的相位,从而使电场跨越间隙。所有填充因素​​都看到了这种行为。因此,用于S偏振的线栅偏振器呈现电容效果。 P偏振结果的分析表明,相角差是填充因子的阳性,填充因子小于或等于0.9,填充因子为0.95。因此,线栅电流在填充因子≤0.90(电感效果)时滞后于P偏振的间隙电压(电感效果),而线电流会导致填充因子= 0.95(电容效果)处的间隙电压。该行为是并联LC电路的空间模拟。

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