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Magneto-optical effects from nanoparticles enhanced by Mie resonances

机译:Mie共振增强了纳米粒子的磁光效应

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Summary form only given. Control of light by an external magnetic field is one of the important methods for modulation of its intensity and polarization. Magneto-optical effects at the nanoscale are usually observed in nanostructured hybrid materials or magnetoplasmonic crystals. In this work, we combine the advantages of all-dielectric resonant nanostructures and magnetic materials for creating compact active magneto-optical metadevices. High-index nanostructures offer novel opportunities for controlling light at the nanoscale based on a strong localization of both electric and magnetic fields in such structures near the corresponding Mie resonance [1]. This fact makes them similar to plasmonic nanostructures with clear advantage that all-dielectric meta-optics structures composed of nanoparticles with high refractive index can overcome this limit and initiate a new platform for nanophotonic metadevices [2]. As the important next step in this field, we consider a control of optical properties by an applied magnetic field, known to be an effective tool for many plasmonic structures [3, 4].
机译:仅提供摘要表格。通过外部磁场控制光是调制其强度和极化的重要方法之一。通常在纳米结构杂化材料或磁等离子体晶体中观察到纳米级的磁光效应。在这项工作中,我们结合了全介电共振纳米结构和磁性材料的优势,以创建紧凑的有源磁光元器件。高折射率纳米结构基于在相应Mie共振附近的此类结构中电场和磁场的强定位,为控制纳米级的光提供了新的机会。这一事实使它们类似于等离子纳米结构,具有明显的优势,即由具有高折射率的纳米粒子组成的全介电子光学结构可以克服这一限制,并为纳米光子元器件开辟新平台[2]。作为该领域重要的下一步,我们考虑通过施加磁场来控制光学特性,众所周知,施加磁场是许多等离激元结构的有效工具[3,4]。

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