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基于金属狭缝阵列的各向异性偏振分束器
引用本文:马婧,刘冬冬,王继成,冯延.基于金属狭缝阵列的各向异性偏振分束器[J].物理学报,2018,67(9):94102-094102.
作者姓名:马婧  刘冬冬  王继成  冯延
作者单位:1.江南大学理学院光电科学与工程系, 无锡 214122;2.徐州工程学院数学与物理科学学院, 徐州 221018;3.东南大学, 毫米波国家重点实验室, 南京 210096
基金项目:国家自然科学基金(批准号:11504139)、江苏省自然科学基金(批准号:BK20140167)、国家博士后基金(批准号:2017M611693)、江苏省高校自然科学基金(批准号:16KJB140016)和毫米波国家重点实验室开放课题(批准号:K201802)资助的课题.
摘    要:在金属-电介质结构的基础上提出了一种基于金属狭缝阵列的各向异性偏振分束器,并采用有限元法研究了横磁(TM)和横电(TE)偏振光入射后结构所表现出的负反射和镜面反射等特性.计算结果表明,当偏振光的入射角设定在20?—70?时,入射的TM光发生强烈的负反射,而TE光的负反射很弱,并随着波长的增加而急剧下降.分析可得偏振分束光栅的理想负反射点和反射面的完美对称响应效果.通过仿真得到了理想负反射点的取值范围.结合严格耦合波法软件,计算不同偏振光入射时负反射和镜面反射条件下的反射率,其消光比高达10~6.

关 键 词:表面等离子体  分束器  负反射  消光比
收稿时间:2017-10-24

Anisotropic polarization beam splitter based on metal slit array
Ma Jing,Liu Dong-Dong,Wang Ji-Cheng,Feng Yan.Anisotropic polarization beam splitter based on metal slit array[J].Acta Physica Sinica,2018,67(9):94102-094102.
Authors:Ma Jing  Liu Dong-Dong  Wang Ji-Cheng  Feng Yan
Institution:1.Department of Opto-electronical Information Science and Engineering, School of Science, Jiangnan University, Wuxi 214122, China;2.School of Mathematics and Physics Science, Xuzhou University of Technology, Xuzhou 221018, China;3.State Key Laboratory of Millimeter Waves, Southeast University, Nanjing 210096, China
Abstract:Polarizing beam splitter (PBS) can separate the propagating directions of two incident orthogonally polarized light beams. However, conventional PBS and multi-layered metamaterial structures are complicated and neither of them can meet the requirements for broadband characteristics due to their resonant characters. In this paper, an anisotropic beam splitter based on metal slit array of the metal-dielectric structure is proposed in order to simplify the structure and improve the beam splitting efficiency. Because of the transverse momentum generated by the inhomogeneous interface, the transverse magnetic (TM) wave is negatively reflected from the surface of the gold film after it has entered into the slit with the waveguide mode of the plasma. When the free electrons on the metal surface oscillate, the transverse electric (TE) wave parallel to the grating direction can cause electrons to oscillate along the grating direction, so that the TE light cannot enter into the slit, resulting in specular reflection. The finite element method is used to study the effects of TM and TE polarized light such as negative reflection (NR) and specular reflection (SR). The results show that when the incident angle of the polarized light is set to be in a range from 20° to 70°, the incident TM light has a strong NR of about 0.9, but the TE light is weakly reflected and decreases sharply with the increase of the wavelength. The ideal NR points of the beam splitter and the perfect symmetrical response of the reflection surface are calculated, and the ideal NR point satisfies P=λ/(2sin θ0). When the incident light angle changes, the variations of the wavelength of the negative and zero order reflection peak are different from those of TM and TE wave, which is more conducive to the tuning of the interaction between light and grating structure. The NR and SR spectral reflectance of different polarized light beams are calculated by rigorous coupled-wave analysis, and the extinction ratios in the two cases are both 106. In addition, those designs of plasmonic splitters will pave the way for the practical applications of plasmonic devices in data storages and optical holography.
Keywords:surface plasmons  splitter  negative reflection  extinction ratio
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