首页> 外文期刊>Optics Communications: A Journal Devoted to the Rapid Publication of Short Contributions in the Field of Optics and Interaction of Light with Matter >The Voigt effects in the anisotropic photonic band gaps of three-dimensional magnetized plasma photonic crystals doped by the uniaxial material
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The Voigt effects in the anisotropic photonic band gaps of three-dimensional magnetized plasma photonic crystals doped by the uniaxial material

机译:单轴材料掺杂的三维磁化等离子体光子晶体各向异性光子带隙中的Voigt效应

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In this paper, the properties of photonic band gaps (PBGs) for three-dimensional magnetized plasma photonic crystals (MPPCs) composed of anisotropic dielectric (the uniaxial material) spheres immersed in homogeneous magnetized plasma background with simple-cubic lattices are theoretically investigated by the plane wave expansion (PWE) method, as the Voigt effects of magnetized plasma are considered. The equations for calculating the anisotropic PBGs in the first irreducible Brillouin zone are theoretically deduced. The anisotropic PBGs and two flatband regions can be obtained. The effects of the ordinary-refractive index, extraordinary-refractive index, filling factor, plasma frequency and plasma cyclotron frequency on the characteristics of anisotropic PBGs for the three-dimensional MPPCs are studied in detail and some corresponding physical explanations are also given. The numerical results show that the anisotropy can open partial band gaps in simple-cubic lattices and the complete PBGs can be found compared to the conventional three-dimensional MPPCs doped by the isotropic material. The bandwidths of PBGs can be enlarged by introducing the magnetized plasma into three-dimensional PCs containing the uniaxial material. It is also shown that the anisotropic PBGs can be manipulated by the ordinary-refractive index, extraordinary-refractive index, filling factor, plasma frequency and plasma cyclotron frequency. The locations of flatband regions cannot be tuned by any parameters except for the plasma frequency and plasma cyclotron frequency. Introducing the uniaxial material in three-dimensional magnetized plasma-dielectric photonic crystals can enlarge the PBGs and also provide a way to obtain the complete PBGs as the three-dimensional MPPCs with high symmetry.
机译:本文通过理论研究了由各向异性电介质(单轴材料)球构成的三维磁化等离子体光子晶体(MPPC)的光子带隙(PBG)的性质,该各向异性电介质球浸入具有简单立方晶格的均匀磁化等离子体背景中。平面波扩展(PWE)方法,因为考虑了磁化等离子体的Voigt效应。理论上推导了用于计算第一不可约布里渊区中各向异性PBG的方程。可以获得各向异性的PBG和两个平坦带区域。研究了三维MPPCs的各向异性折射率,PBG,各向异性折射率,填充系数,等离子体频率和等离子体回旋加速器频率对各向异性PBG特性的影响,并给出了相应的物理解释。数值结果表明,各向异性可以在简单立方晶格中打开部分带隙,与各向同性材料掺杂的常规三维MPPC相比,可以找到完整的PBG。通过将磁化的等离子体引入包含单轴材料的三维PC中,可以扩大PBG的带宽。还表明,可以通过常折射率,常折射率,填充系数,等离子体频率和等离子体回旋加速器频率来操纵各向异性PBG。除等离子频率和等离子回旋加速器频率外,任何其他参数都无法调整平带区域的位置。在三维磁化等离子体介电光子晶体中引入单轴材料可以扩大PBG,并为获得完整的PBG作为高对称性的三维MPPC提供了一种途径。

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