| Literature DB >> 31385386 |
Fuli Zhang1, Chang Li1, Yuancheng Fan1, Ruisheng Yang1, Nian-Hai Shen2, Quanhong Fu1, Weihong Zhang3, Qian Zhao4, Ji Zhou5, Thomas Koschny2, Costas M Soukoulis2,6.
Abstract
Artificially structured metamaterials with metallic or dielectric inclusions are extensively studied for exotic light manipulations via controlling the local-resonant modes in the microstructures. The coupling between these resonant modes has drawn growing interest in recent years due to the advanced functional metamaterial making the microstructures more and more complex. Here, the suppression of magnetic resonance of a dielectric cuboid, an analogue to the scattering cancellation effect or radiation control system, realized with an exterior cloaking in a hybrid metamaterial system, is demonstrated. Furthermore, the significant modulation of the absorption of the dielectric resonator in the hybrid metamaterial is also demonstrated. The physical insight of the experimental results is well illuminated with a classical double-harmonic-oscillator model, from which it is revealed that the complex coupling, i.e., the phase of coupling coefficient, plays a crucial role in the overall response of the metal-dielectric hybrid system. The proposed design strategy is anticipated to form a more straightforward and efficient paradigm for practical applications based on radiation control via versatile mode couplings.Entities:
Keywords: controllable electromagnetically induced transparency; coupled harmonic-oscillator model; exterior cloaking; hybrid metasurfaces; metamaterials
Year: 2019 PMID: 31385386 DOI: 10.1002/adma.201903206
Source DB: PubMed Journal: Adv Mater ISSN: 0935-9648 Impact factor: 30.849