| Literature DB >> 27034257 |
Kunpeng Yang1, Min Wang1, Mingbo Pu1, Xiaoyu Wu1, Hui Gao1, Chenggang Hu1, Xiangang Luo1.
Abstract
It is well known that the polarization of a linearly polarized (LP) light would rotate after passing through a single layer graphene under the bias of a perpendicular magnetostatic field. Here we show that a corresponding phase shift could be expected for circularly polarized (CP) light, which can be engineered to design the circular polarization sensitive devices. We theoretically validate that an ultrathin graphene-based absorber with the thickness about λ/76 can be obtained, which shows efficient absorption >90% within incident angles of ±80°. The angle-independent phase shift produced by the graphene is responsible for the nearly omnidirectional absorber. Furthermore, a broadband absorber in frequencies ranging from 2.343 to 5.885 THz with absorption over 90% is designed by engineering the dispersion of graphene.Entities:
Year: 2016 PMID: 27034257 PMCID: PMC4817153 DOI: 10.1038/srep23897
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Phase shift in the perpendicular magnetostatic field.
Figure 2Phase shift φ as the function of frequency and magnetic field.
Figure 3Omnidirectional absorption of the absorber.
(a) Theory and simulation absorption of the absorber. (b) Reflection coefficients for the LCP incident light to the RCP reflected light under different incident angles. (c) Reflection coefficients for the LCP incident light to the LCP reflected light under different incident angles. The inset is the minimal reflection coefficients for different incident angles in details. (d) Absorption of the LCP incident light under different incident angles.
Figure 4Broadband absorption of the absorber.
(a) Theory and simulation absorption. (b) Phase shift and (c) resistance of the graphene (dashed line) and the ideal screen (solid line). (d) Absorption of the LCP light as the function of the magnetostatic bias and the frequency.
Figure 5Simulation results of the broadband absorber under different incident angles.