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Surface lattice resonances and magneto-optical response in magnetic nanoparticle arrays

机译:磁性纳米粒子阵列中的表面晶格共振和磁光响应

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Structuring metallic and magnetic materials on subwavelength scales allows for extreme confinement and a versatile design of electromagnetic field modes. This may be used, for example, to enhance magneto-optical responses, to control plasmonic systems using a magnetic field, or to tailor magneto-optical properties of individual nanostructures. Here we show that periodic rectangular arrays of magnetic nanoparticles display surface plasmon modes in which the two directions of the lattice are coupled by the magnetic field-controllable spin-orbit coupling in the nanoparticles. When breaking the symmetry of the lattice, we find that the optical response shows Fano-type surface lattice resonances whose frequency is determined by the periodicity orthogonal to the polarization of the incident field. In striking contrast, the magneto-optical Kerr response is controlled by the period in the parallel direction. The spectral separation of the response for longitudinal and orthogonal excitations provides versatile tuning of narrow and intense magneto-optical resonances.
机译:在亚波长范围内构造金属和磁性材料可实现极端限制,并具有电磁场模式的通用设计。例如,这可用于增强磁光响应,使用磁场控制等离激元系统或调整单个纳米结构的磁光特性。在这里,我们显示磁性纳米颗粒的周期性矩形阵列显示表面等离振子模式,其中晶格的两个方向通过纳米颗粒中磁场可控的自旋轨道耦合而耦合。当破坏晶格的对称性时,我们发现光学响应显示出Fano型表面晶格共振,其频率由正交于入射场极化的周期性确定。形成鲜明对比的是,磁光克尔响应由平行方向上的周期控制。纵向和正交激发的响应的光谱分离提供了对狭窄和强烈的磁光共振的通用调谐。

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