Ben-Xin Wang, Chao Tang, Qingshan Niu, Yuanhao He, Fuwei Pi, Xiaoyi Wang,
https://link.springer.com/article/10.1007/s11664-020-08337-x
An approach to realize a multiple-band perfect light absorber is demonstrated using a simple metamaterial design featuring a composite metallic structure consisting of a closed ring and a rectangular patch atop a metallic substrate separated by an insulator. Three narrow-band and discrete resonance peaks with nearly 100% absorption rates are obtained. The first absorption peak is due to the dipole resonance of the closed ring, while the last two absorption peaks are caused by the coupling effect of the closed ring and rectangular patch. The field distribution of the three absorption peaks is given to provide additional evidence. Unlike traditional multiple-band light absorbers that eliminate (or avoid) the interaction between the metallic array structures, our design is based on the mode coupling of the composite structure. This method can obviously reduce the number of metallic resonators, simplify the structure design and reduce fabrication costs.
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Showing posts with label Xiaoyi Wang. Show all posts
Showing posts with label Xiaoyi Wang. Show all posts
Thursday, August 6, 2020
Thursday, April 2, 2020
Abstract-Design of dual-band polarization controllable metamaterial absorber at terahertz frequency
Ben-Xin Wang, Yuanhao He, Nianxi Xu, Xiaoyi Wang, Yanchao Wang, Jianjun Cao
https://www.sciencedirect.com/science/article/pii/S2211379720305969
Dual-band polarization controllable terahertz metamaterial absorber consisting of two horizontal metallic strips and two vertically connected metallic strips is demonstrated. Due to different strip lengths in the two orthogonal directions, two near-perfect absorption peaks are firstly obtained when the incident beam electric field is in the horizontal direction, while two new peaks are next realized when the electric field is selected along the vertical direction. The near-field distributions in two specific directions are provided to investigate the mechanism of polarization controllable dual-band absorption. Our research should have broad application prospects in the selection, control and utilization of polarization-based devices.
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