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Characters of frequency response in a coaxial Bragg structure with tapered-double-sinusoidal grooves operating at 0.35?THz frequency

机译:具有0.35Ω·ZHz频率的锥形双向沟槽的同轴布拉格结构中频率响应的特征

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On the basis of ordinary sinusoidal groove structures, an auxiliary sinusoidal distribution with a smaller etching period is superimposed, and a negative-taper is added, on the inner and outer conductor walls to form a coaxial Bragg structure with tapered-double-sinusoidal grooves. Through the FORTRAN software programming simulation experiments, we can see that compared with the ordinary sinusoidal grooves, the bandwidth of the working mode and competition mode gets narrower, the quality factor Q gets greater, the residual side-lobes are also suppressed, and the selectivity of frequency is enhanced when the coaxial Bragg structure adopts the tapered-double-sinusoidal grooves. At the same time, the center resonance frequency point of the competition mode is far away from the working mode, and the bandgap overlap is further separated. However, the reflectivity of the working mode decreases and the reflectivity of the competing mode increases with the increase in the gradient angle. These peculiarities of the negative-tapered-double-sinusoidal groove structure are favorable to construct a cavity with a narrower bandwidth and high quality factor and also are favorable to the mode selectivity.
机译:在普通的正弦槽结构的基础上,叠加具有较小蚀刻周期的辅助正弦分布,并且在内导体壁上添加负锥形,以形成具有锥形双窦槽的同轴布拉格结构。通过Fortran软件编程仿真实验,我们可以看到与普通的正弦凹槽相比,工作模式和竞争模式的带宽变窄,质量因子Q变得更大,还抑制了残留的侧瓣,以及​​选择性当同轴布拉格结构采用锥形双正弦槽时,频率增强。同时,竞争模式的中心谐振频率点远离工作模式,并且带隙重叠进一步分离。然而,工作模式的反射率降低,并且竞争模式的反射率随着梯度角的增加而增加。这些负锥形双窦结构的这些特性有利于构造具有较窄带宽和高质量因子的腔,并且还有利于模式选择性。

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