Powell Alexander W, Mitchell-Thomas Rhiannon C, Zhang Shiyu, Cadman Darren A, Hibbins Alastair P, Sambles J Roy
Electromagnetic and Acoustic Materials Group, Department of Physics and Astronomy, University of Exeter, Exeter EX4 4QL, United Kingdom.
Wolfson School of Mechanical, Electrical and Manufacturing Engineering, Loughborough University, Loughborough LE11 3T, United Kingdom.
ACS Photonics. 2021 Mar 17;8(3):841-846. doi: 10.1021/acsphotonics.0c01811. Epub 2021 Mar 3.
Interlaced metallic meshes form a class of three-dimensional metamaterials that exhibit nondispersive, broadband modes at low frequencies, without the low frequency cutoff typical of generic wire grid geometries. However, the experimental observation of these modes has remained an open challenge, both due to the difficulties in fabricating such complex structures and also because the broadband mode is longitudinal and does not couple to free-space radiation (dark mode). Here we report the first experimental observation of the low frequency modes in a block of interlaced meshes fabricated through 3D printing. We demonstrate how the addition of monopole antennas to opposing faces of one of the meshes enables coupling of a plane wave to the low frequency "dark mode" and use this to obtain the dispersion of the mode. In addition, we utilize orthogonal antennas on opposite faces to achieve polarization rotation as well as phase shifting of radiation passing through the structure. Our work paves the way toward further experimental study into interlaced meshes and other complex 3D metamaterials.
交错金属网构成了一类三维超材料,这类材料在低频下呈现非色散的宽带模式,没有普通线栅几何结构典型的低频截止现象。然而,由于制造这种复杂结构存在困难,且宽带模式是纵向的,不与自由空间辐射耦合(暗模式),对这些模式的实验观测一直是一个悬而未决的挑战。在此,我们报告了通过3D打印制造的交错网块中低频模式的首次实验观测结果。我们展示了如何在其中一个网的相对面上添加单极天线,使平面波能够耦合到低频“暗模式”,并利用这一点来获得该模式的色散。此外,我们在相对面上使用正交天线,以实现极化旋转以及穿过该结构的辐射的相移。我们的工作为进一步对交错网和其他复杂三维超材料进行实验研究铺平了道路。