论文标题
在全级甲板中,高阶多极端能够以统一效率启用超级角度的光弯曲
High-order multipoles in all-dielectric metagrating enabling ultralarge-angle light bending with unity efficiency
论文作者
论文摘要
近年来,已广泛应用梯度元面积,以实现对光束在薄光学组件上的前所未有的控制。但是,这些元信息在需要良好的酌处权时,弯曲光的弯曲光和高制造需求的弯曲效率低。在这项工作中,我们根据MIE类型的谐振干扰研究了全dielectric Metagration,从而使具有超级磁性角的光束转向的光学衍射。据发现,元式晶格的耦合可以调节令人兴奋的电气和磁共振状态,包括基本偶极子和高阶多尔斯,从而导致理想的不对称散射模式,以重新分布在意志下的衍射通道之间的能量。四极杆和己酮的参与不仅显着提高了工作效率,而且还为波浪操作带来了独特的可能性,而偶极子无法实现。在两种极化下,利用一系列薄硅棒,几乎统一的效率证明了大角度的负折射和反射。与常规的跨额叶相比,这种全元式汇聚具有高灵活性,高效率和低制造需求的优点。多极端之间的强耦合和繁荣的相互作用可以作为广泛的波前控制的基石,并为各种芯片片上光波控制(例如弯曲,聚焦,滤波,滤波和传感)提供了有效的解决方案。
Gradient metasurfaces have been extensively applied in recent years for enabling an unprecedented control of light beam over thin optical components. However, these metasurfaces suffer from low efficiency when it comes to bending light with large angle and high fabrication demand when it requires fine discretion. In this work, we investigate the all-dielectric metagrating based on mie-type resonances interference, allowing extraordinary optical diffraction for beam steering with ultralarge angle. It is found that the coupling inside and among lattice of metagrating can tune the exciting state of electric and magnetic resonances including both fundamental dipoles and high-order multipoles, leading to ideal asymmetrical scattering pattern for redistributing the energy between the diffraction channels at will. The participation of quadrupole and hexapole not only significantly enhance the working efficiency, but also bring distinctive possibilities for wave manipulation which cannot be reached by dipoles. Utilizing a thin array of silicon rods, large-angle negative refraction and reflection are demonstrated with almost unity efficiency under both polarizations. Compared with conventional metasurfaces, such an all-dielectric mategrating has the merits of high flexibility, high efficiency and low fabrication demand. The strong coupling and prosperous interactions among multipoles may behave as a cornerstone for broad range of wavefront control and offer an effective solution for various on-chip optical wave control such as bending, focusing, filtering and sensing.