摘要
利用一维光子晶体和二维等离子体光子晶体构建了一种基于束缚态的可调窄带滤波器,滤波器的工作频率位于两个光子晶体的共同禁带内.使用COMSOL Multiphysics有限元仿真软件研究了一维光子晶体的几何参数和等离子体参数对滤波器性能的影响.研究发现两个禁带的中心频率和深度越接近,则滤波器的峰值透射率越大,且中心频率占主导作用.另一方面,滤波器的工作频率与等离子体密度成正比,与碰撞频率成反比.滤波器品质因子和峰值透射率随等离子体密度的增大先增大后减小,随碰撞频率的增加而减小.最后,随着等离子体碰撞频率的增加,峰值透射率和品质因子没有发生显著下降,这表明滤波器对等离子体损耗有一定抵抗力.我们相信这项工作有助于一些新型等离子体光子晶体滤波器的研究.
Photonic crystals are widely used in a class of narrow-band frequency selective filter due to their excellent ability to control electromagnetic waves,in which the working frequency depends on the structural parameters of the point defect resonant cavity of the photonic crystal,and the introduction of some dispersive media into the cavity makes the filter adjustable.In general,this kind of cavity-filter is very sensitive to the parameter disturbance of the cavity,and the quality factor of the filter can be reduced significantly by material loss.On the other hand,some studies have shown that there may be bound states at the interface between two different photonic crystals,and the bound state is often accompanied by narrow band and high transmittance,which implies that a narrow-band filter based on bound states is feasible.Importantly,filters based on bound states may be resistant to material loss to some degree.In this paper,a bound state related tunable narrow-band filter composed of a one-dimensional photonic crystal and a two-dimensional plasma photonic crystal is proposed,and the working frequency of the filter is located in the common band gap of the two photonic crystals.The COMSOL Multiphysics finite element simulation software is used to study the influences of geometric parameters of the one-dimensional photonic crystal and plasma parameters on the performance of the filter.It is found that the closer to each other the center frequencies and depths of the two different forbidden bands are,the greater the peak transmittance of the filter,in which the center frequency dominates,will be.On the other hand,the working frequency of the filter is directly proportional to plasma density and inversely proportional to collision frequency.The quality factor of the filter first increases and then decreases with the increase of plasma density,and decreases with the increase of collision frequency.The peak transmittance of the filter first increases and then decreases with the increase of plasma density,and decreases with the increase of plasma collision frequency.Finally,with the increase of collision frequency,both the peak transmittance and the quality factor decrease slightly,which indicates that the filter has a certain resistance to plasma loss.We believe that this work is helpful in investigating some new plasmonic photonic crystal filters.
作者
周铭杰
谭海云
周岩
诸葛兰剑
吴雪梅
Zhou Ming-Jie;Tan Hai-Yun;Zhou Yan;Zhuge Lan-Jian;Wu Xue-Mei(Collaborative Innovation Center of Suzhou Nano Science and Technology,School of Physical Science and Technology,Soochow University,Suzhou 215006,China;Key Lab of Thin Film Materials of Jiangsu Province,Suzhou 215006,China;School of Optoelectronic Science and Engineering,Soochow University,Suzhou 215006,China;Analysis and Testing Center,Soochow University,Suzhou 215123,China)
出处
《物理学报》
SCIE
EI
CAS
CSCD
北大核心
2021年第17期172-178,共7页
Acta Physica Sinica
基金
国家自然科学基金(批准号:11975163)
江苏省高等院校优秀学科建设工程(PAPD)资助的课题.