Varghese B, Shramkova O, Minard P, Blondé L, Drazic V, Allié V
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Sci Rep. 2021 Jun 4;11(1):11871. doi: 10.1038/s41598-021-91400-2.
In this paper, we report the experimental and numerical investigation of plane wave diffraction by an all-dielectric dual-material cuboid. Edge diffraction by a cuboid leads to the generation of a narrow, high intensity beam in the near-field region called a photonic jet. We examine the dependence of the jet behavior and orientation on the materials and dimensions of constitutive parts in the microwave frequency domain. The possibility to shift and deviate the resultant microwave jet in the near-field region of such a structure depending on the size of constitutive parts is demonstrated numerically. Experimentally, we observe a shift in the spatial position of the jet. The experimental asymmetric electric field profile observed in the far-field region is attributed to the input of multiple edge waves generated by the dual-material cuboid. The presented results may be scaled at different frequency bands such as optical frequencies for designing nanostructures enabling the focusing and deviation functionality and creation of new optical devices which would satisfy the needs of emerging nanophotonic applications.
在本文中,我们报告了全介质双材料长方体对平面波衍射的实验和数值研究。长方体的边缘衍射会在近场区域产生一束狭窄的高强度光束,称为光子射流。我们在微波频域中研究了射流行为和方向对组成部分的材料和尺寸的依赖性。通过数值模拟证明了根据组成部分的尺寸在这种结构的近场区域中移动和偏移合成微波射流的可能性。在实验中,我们观察到射流空间位置的移动。在远场区域观察到的实验不对称电场分布归因于双材料长方体产生的多个边缘波的输入。所呈现的结果可以在不同频段(如光频)进行缩放,以设计具有聚焦和偏移功能的纳米结构,并创建满足新兴纳米光子应用需求的新型光学器件。