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Study on the anisotropic photonic band gaps in three-dimensional tunable photonic crystals containing the epsilon-negative materials and uniaxial materials

机译:包含ε负材料和单轴材料的三维可调光子晶体中各向异性光子带隙的研究

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In this paper, the properties of anisotropic photonic band gaps (PBGs) for three-dimensional (3D) photonic crystals (PCs) composed of the anisotropic positive-index materials (the uniaxial materials) and the epsilon-negative (ENG) materials with bodycentered- cubic (bcc) lattices are theoretically studied by a modified plane wave expansion (PWE) method, which are the uniaxial materials spheres inserted in the epsilon-negative materials background. The anisotropic photonic band gaps (PBGs) and one flatbands region can be achieved in first irreducible Brillouin zone. The influences of the ordinary-refractive index, extraordinaryrefractive index, filling factor, the electronic plasma frequency, the dielectric constant of ENG materials and the damping factor on the properties of anisotropic PBGs for such 3D PCs are studied in detail, respectively, and some corresponding physical explanations are also given. The numerical results show that the anisotropy can open partial band gaps in such 3D PCs with bcc lattices composed of the ENG materials and uniaxial materials, and the complete PBGs can be obtained compared to the conventional 3D PCs containing the isotropic materials. The calculated results also show that the anisotropic PBGs can be manipulated by the parameters as mentioned above except for the damping factor. Introducing the uniaxial materials into 3D PCs containing the ENG materials can obtain the larger complete PBGs as such 3D PCs with high symmetry, and also provides a way to design the tunable devices.
机译:本文研究了由各向异性正折射率材料(单轴材料)和ε负材料(体心)组成的三维(3D)光子晶体(PC)的各向异性光子带隙(PBG)的特性-立方(bcc)晶格是通过改良的平面波扩展(PWE)方法进行理论研究的,该方法是在ε负材料背景中插入的单轴材料球体。各向异性光子带隙(PBG)和一个平坦带区域可以在第一个不可还原的布里渊区中实现。分别详细研究了普通折射率,非折射率,填充系数,电子等离子体频率,ENG材料的介电常数和阻尼系数对此类3D PC各向异性PBG性能的影响,并提出了相应的解决方案还给出了物理解释。数值结果表明,在具有由ENG材料和单轴材料组成的bcc晶格的3D PC中,各向异性可以打开部分带隙,并且与包含各向同性材料的常规3D PC相比,可以获得完整的PBG。计算结果还表明,除阻尼系数外,各向异性PBG可以通过上述参数进行控制。将单轴材料引入到包含ENG材料的3D PC中,可以获得具有较高对称性的较大的完整PBG,例如这种3D PC,并且还提供了一种设计可调谐设备的方法。

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