| Literature DB >> 29234053 |
Hang Su1, Hao Wang1, Hua Zhao2, Tingyu Xue1, Jingwen Zhang3,4.
Abstract
In this study, a structure to realize a switchover between two different responses of electromagnetically induced transparency (EIT) was designed and implemented by simulation. Taking advantage of the anisotropy in the structure and the coupling between the radiative and dark elements, a metasurface switch with modulation depth of over 85% between orthogonal polarization incident light illuminations was demonstrated. The key mode switchover between the "on" and "off" states was achieved by electrically changing the dressing light polarization with a liquid crystals layer pre-aligned with a mature technology, without changing the incident light and an expected and reversible transition from an EIT-like spectrum to a strong spectral dip was observed. The modulation in the EIT switch fabricated with the proposed straightforward approach is a promising tool to control the groping velocity delay.Entities:
Year: 2017 PMID: 29234053 PMCID: PMC5727166 DOI: 10.1038/s41598-017-17612-7
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Schematic diagram for the EIT metasurface and LC sections at (a) the “off” state and (b) the “on” state. (c) Planar structural representation of a metasurface unit. (d) Numerical result of the metasurface responses under the x- and y-polarized incident light without the LC layer.
Figure 2Transmission contrast between EIT atomic theory [(a–d)] and simulation results (e). The red line in (b) and (d) shows the transmission calculated from linear susceptibility and they are analogies of different polarization incident light responses (blue line and red line) in (e) respectively.
Figure 3Transmission spectrum with different length of l 1 in Fig. 1(c). The responses shows an obvious relationship with polarization. The dimensions in red line was selected in our simulation work due to the proper positions of resonance peaks.
Figure 4(a) Conversion for x-polarization incident light. (b) Spectrum comparison between the “on” and “off” states. (c) Electrical field distribution at the dip position of 932.5 nm in (b). (d) Corresponding charge distributions on the metasurface unit surface.