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首页> 外文期刊>Communications in Theoretical Physics >Analysis, design and simulation of MIM plasmonic filters with different geometries for technical parameters improvement
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Analysis, design and simulation of MIM plasmonic filters with different geometries for technical parameters improvement

机译:具有不同几何形态参数改进的MIM等级滤波器的分析,设计和仿真

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摘要

In this paper, four optical filter topologies based on metal-insulator-metal waveguides are proposed and the designed structures are investigated numerically using finite-difference time-domain method. Triangular-shaped adjunctions have been added to the filter structures to improve their transmission spectrum. These improved structures consist of air as the insulator and silver as the metal. The relative permittivity of metal has been described via the Drude, Drude-Lorentz, and Palik models. The first filter's transmission spectrum shows an acceptable transmittance. In the second optimized filter, the transmission spectrum has been improved. The transmittance spectrum can be tuned through adjusting the edge of the triangle in these four optimized filters. As a result, the bandwidths of resonance spectra can be adjusted. The theory of such tapered structures will be investigated by the tapered transmission line and will be solved with the transfer matrix method. This method shows a better performance and higher transmission efficiency in comparison with the basic structures. On the other hand, the final filter has been chosen as the best one because of its hexagonal resonator. The main reason for having a better result is due to a longer interaction length in comparison with the circular resonator. This in turn creates much better energy coupling and results in higher transmission.
机译:在本文中,提出了基于金属 - 绝缘体 - 金属波导的四种光学滤波器拓扑,并且使用有限差分时域法在数值上进行了设计的结构。已经将三角形的切换添加到过滤器结构中以改善其透射光谱。这些改进的结构包括空气作为绝缘体和银作为金属。已经通过博德,博德 - 洛伦兹和Palik模型描述了金属的相对介电常数。第一滤波器的传输频谱显示可接受的透射率。在第二优化滤波器中,传输频谱已经提高。可以通过在这四个优化的滤波器中调节三角形的边缘来调谐透射谱。结果,可以调整谐振谱的带宽。将通过锥形传输线研究这种锥形结构的理论,并用传递矩阵法解决。该方法与基本结构相比,该方法显示了更好的性能和更高的传输效率。另一方面,由于其六边形谐振器,最终过滤器已被选为最佳。具有更好结果的主要原因是与圆形谐振器相比的相互作用长度较长。这反过来又会产生更好的能量耦合并导致更高的传输。

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