论文标题

光子晶体偏振子的理论在定期图案的多层波导中

Theory of photonic crystal polaritons in periodically patterned multilayer waveguides

论文作者

Zanotti, Simone, Nguyen, Hai Son, Minkov, Momchil, Andreani, Lucio Claudio, Gerace, Dario

论文摘要

我们提出了一种形式主义,用于研究与活性半导体量子井的多层电介质结构中的辐射 - 物质相互作用,该量子量子井具有平面周期性晶格。该理论基于广义霍普菲尔德矩阵的对角线化,并在非富米公式中包含损失通道。这些系统中出现了称为光子晶体极化子的混合基本激发,其详细的分散和损耗特性依赖于材料组成以及晶格的对称特性。我们通过计算非常多样化的材料平台中的偏光量分散,例如基于多层钙钛矿的晶格或无机半导体异质结构来显示这种方法的普遍性。作为该方法的应用,我们通过示例性耦合在零或有限的面内波向量的连续体中通过激发耦合来介绍如何通过激发型耦合来设计无损极性的模式,并讨论其拓扑特性。提供了基于散射矩阵方法的半经典方法的详细比较,该方法允许根据不同极性分支的极化依赖性激发来解释光谱。这项工作引入了一种高效且无效的用途数值方法,用于工程学光子晶体偏振子,潜在的应用从低阈值激光器到对称性保护的混合放射线状态的传播模式。

We present a formalism for studying the radiation-matter interaction in multilayered dielectric structures with active semiconductor quantum wells patterned with an in-plane periodic lattice. The theory is based on the diagonalization of the generalized Hopfield matrix, and it includes loss channels in a non-Hermitian formulation. Hybrid elementary excitations named photonic crystal polaritons arise in these systems, whose detailed dispersion and loss characteristics are shown to depend on material composition as well as on symmetry properties of the lattice. We show the generality of the approach by calculating polariton dispersions in very diverse material platforms, such as multilayered perovskite-based lattices or inorganic semiconductor heterostructures. As an application of the method, we show how to engineer lossless polariton modes through excitonic coupling to bound states in the continuum at either zero or finite in-plane wavevector, and discuss their topological properties. Detailed comparison with a semiclassical approach based on the scattering matrix method is provided, which allows to interpret the optical spectra in terms of polarization-dependent excitation of the different polariton branches. This work introduces an efficient and invaluably versatile numerical approach to engineer photonic crystal polaritons, with potential applications ranging from low-threshold lasers to symmetry-protected propagating modes of hybrid radiation-matter states.

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