论文标题

通过混合MIE-Exciton共振来操纵光子厅效应

Manipulating the photonic Hall effect with hybrid Mie-exciton resonances

论文作者

Stamatopoulou, P. Elli, Yannopapas, Vassilios, Mortensen, N. Asger, Tserkezis, Christos

论文摘要

我们通过基于适当扩展的MIE理论的分析计算,研究了涉及旋晶纳米颗粒的远场光学响应,即在存在静态磁场的平面波激发,涉及内层或外层的核心壳纳米颗粒。我们专注于通过bismuth取代的Yttrium铁石榴石(BI:YIG)纳米球和纳米壳的吸收和散射,并结合了兴奋型材料,例如有机分子聚集体或二维过渡金属二进制二分法,并讨论了两种模态特征的杂种特征。我们观察到强磁形现象的激发,特别是探索磁透射光电流的响应和可调节性,这表明光子霍尔效应。我们展示了BI:YIG和激子层之间的相互作用如何导致一对高度方向散射的狭窄带,并从上述杂交中浮出水面,可以通过调整系统的几何或光学参数来对其进行调节。我们的理论研究将光学各向异性介质作为纳米光子学中强耦合的有希望的模板引入,提供了一种结合可调磁和光学特性的方法,并具有潜在的含义,这既在全dielectric光子设备的设计中都具有潜在的影响。

We examine the far-field optical response, under-plane wave excitation in the presence of a static magnetic field, of core-shell nanoparticles involving a gyroelectric component, either as the inner or the outer layer, through analytic calculations based on appropriately extended Mie theory. We focus on absorption and scattering of light by bismuth-substituted yttrium iron garnet (Bi:YIG) nanospheres and nanoshells, combined with excitonic materials such as organic-molecule aggregates or two-dimensional transition-metal dichalcogenides, and discuss the hybrid character of the modes emerging from the coupling of the two constituents. We observe the excitation of strong magneto-optic phenomena and explore, in particular, the response and tunability of a magneto-transverse light current, indicative of the photonic Hall effect. We show how interaction between the Bi:YIG and excitonic layers leads to a pair of narrow bands of highly directional scattering, emerging from the aforementioned hybridization, which can be tuned at will by adjusting the geometrical or optical parameters of the system. Our theoretical study introduces optically anisotropic media as promising templates for strong coupling in nanophotonics, offering a means to combine tunable magnetic and optical properties, with potential implications both in the design of all-dielectric photonic devices but also in novel clinical applications.

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