论文标题
等离子体模式处于各向异性2D材料的倾斜边缘
Plasmonic modes at inclined edges of anisotropic 2D materials
论文作者
论文摘要
考虑到非磁性各向异性2D材料的光轴任意倾斜的边缘的密闭模式。通过开发确切的维纳 - hopf和近似fetter方法,我们研究了边缘模式的分散,场和电荷密度分布。洛伦兹型电导率在一个或两个方向上描述了2D层,这对于天然各向异性的2D材料和共振双曲线跨面是现实的。我们证明,由于各向异性,边缘模式仅存在于超过非零阈值的波向量,如果边缘相对于谐振电导率的方向倾斜。对场和电荷密度空间曲线的主导贡献由evanescent 2D波提供,这些波限制在2D层附近和边缘附近层的空间中。沿层的场限制度取决于波矢量或自由传播2D模式的边缘模式和连续体之间的频率不匹配。我们的分析适用于足够大的波矢量的各种类型的极性子(等离子体,声子,激子 - 孔子等)。得益于垂直于边缘的各个方向上的优越的田地限制,这些模式对于现代的等离子体学和传感器而言显得有希望。
Confined modes at the edge arbitrarily inclined with respect to optical axes of nonmagnetic anisotropic 2D materials are considered. By developing the exact Wiener-Hopf and approximated Fetter methods we studied edge modes dispersions, field and charge density distributions. The 2D layer is described by the Lorentz-type conductivities in one or both directions, which is realistic for natural anisotropic 2D materials and resonant hyperbolic metasurfaces. We demonstrate that, due to anisotropy, the edge mode exists only at wave vectors exceeding the nonzero threshold value if the edge is tilted with respect to the direction of the resonant conductivity. The dominating contribution to field and charge density spatial profiles is provided by evanescent 2D waves, which are confined both in space near the 2D layer and along the layer near its edge. The degree of field confinement along the layer is determined by wave vector or frequency mismatch between the edge mode and continuum of freely propagating 2D modes. Our analysis is suitable for various types of polaritons (plasmon-, phonon-, exciton-polaritons etc.) at large enough wave vectors. Thanks to superior field confinement in all directions perpendicular to the edge these modes look promising for modern plasmonics and sensorics.