论文标题
各向异性多层中的evanscent Polariton模式的层分辨分解的共振强度
Layer-Resolved Resonance Intensity of Evanescent Polariton Modes in Anisotropic Multilayers
论文作者
论文摘要
分层各向异性异质结构中的Polaron Polariton模式是现代纳米光子技术的关键基础。理论上可以通过转移矩阵形式主义来描述这种多层系统的逃生激发的轻度相互作用。该方法允许计算p偏振反射系数IM $(R_ {pp})$的虚构部分,该$通常用于分析多层结构的偏光量分散体,但缺乏访问层解决的层状极性响应的可能性。我们提出了一种计算静脉各向异性分层异质结构中层分辨的极化共振强度的方法,该方法基于计算从转移矩阵形式主义提取的poynting载体。我们的方法独立于实验激发条件,并符合经验保护法。作为一个测试场,我们研究了两个最先进的纳米光子多层系统,涵盖了扭曲的\ MOO〜双层中的强耦合和可调双曲的表面声子极性。我们的方法为极化响应提供了新的洞察力,它具有理解,优化和预测北极星异质结构的新形式的巨大潜力。
Phonon polariton modes in layered anisotropic heterostructures are a key building block for modern nanophotonic technologies. The light-matter interaction for evanescent excitation of such a multilayer system can be theoretically described by a transfer matrix formalism. This method allows to compute the imaginary part of the p-polarized reflection coefficient Im$(r_{pp})$, which is typically used to analyze the polariton dispersion of the multilayer structure, but lacks the possibility to access the layer-resolved polaritonic response. We present an approach to compute the layer-resolved polariton resonance intensity in aribtrarily anisotropic layered heterostructures, based on calculating the Poynting vector extracted from a transfer matrix formalism. Our approach is independent of the experimental excitation conditions, and fulfills an empirical conservation law. As a test ground, we study two state-of-the-art nanophotonic multilayer systems, covering strong coupling and tunable hyperbolic surface phonon polaritons in twisted \MoO~double layers. Providing a new level of insight into the polaritonic response, our method holds great potential for understanding, optimizing and predicting new forms of polariton heterostructures in the future.