| Literature DB >> 28831130 |
Gaochao Zhou1,2, Bo Zhu1, Junming Zhao1, Guanghao Zhu3,4, Biaobing Jin5,6, Yijun Feng1, Lin Kang1,2, Weiwei Xu1,2, Jian Chen1,2, Peiheng Wu1,2.
Abstract
We propose and demonstrate a type of a broadband half-wave plate that operates in the reflective mode. It consists of a metal grating embedded in a dielectric slab and placed on top of a grounded metal surface. We theoretically show that owing to the optical feedback effect which originates from the wave reflections at the air-dielectric interface, the proposed half-wave plate exhibits a broadened and flattened response when comparing to the case where the feedback effect is absent. Such a prediction is validated using both numerical and experimental works carried out on a half-wave plate designed at 10 GHz. Moreover, our theoretical analysis also reveals that the half-wave plate has an interesting feature of broad angular response. Taking advantage of these features, we experimentally demonstrate that the proposed device can function as a freely tunable linear polarization converter with polarization conversion residues less than -20 dB in a wide frequency band, under the condition that the incident angle is as large as 45 degrees.Entities:
Year: 2017 PMID: 28831130 PMCID: PMC5567214 DOI: 10.1038/s41598-017-09561-y
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Illustrations on the design and operating principle of the proposed device. (a) Schematics of a half-wave plate with a narrow bandwidth. (b) Analytic model for treating the half-wave plate depicted in (a). (c) Schematics of the proposed half-wave plate with a broad spectral bandwidth. (d) Analytic model for treating the half-wave plate depicted in (c). Note that the blue and red colors are in correspondence to cases where the polarization angles are −45 degrees and 45 degrees with respect to the grating wires.
Figure 2Numerical results for the proposed half-wave plate under normal incidence. (a) Amplitude coefficients for the co-polarized and cross-polarized components of the reflected beam. (b) Phase difference of the reflected beams between cases where the polarizations of the input beam are parallel and perpendicular to the grating wires. For comparison purpose, (c) and (d) sketch the response curves obtained for the narrowband design case where the dielectric slabs is absent.
Figure 3Experimental and numerical results for the proposed half-wave plate operating under quasi-normal incidence. (a) Amplitude coefficients for the co-polarized and cross-polarized components of the reflected beam. (b) Phase difference of the reflected beams between cases where the polarizations of the input beam are parallel and perpendicular to the grating wires. Note that the incident angle is 5 degrees.
Figure 4Numerical results for the proposed half-wave plate under oblique incidence. (a) Amplitude coefficients for the co-polarized and cross-polarized components of the reflected beam. (b) Phase difference of the reflected beams between cases where the polarizations of the input beam are parallel and perpendicular to the grating wires. The insect in (a) shows the oblique incidence situation under consideration.
Figure 5Application of the proposed half-wave plate as a freely tunable linear polarization converter. (a) Illustration on the device operation. The input beam has a fixed polarization along the y direction. When the half-wave plate is rotated by an angle of φ, the polarization of the reflected beam will be rotated by an angle of 2φ. (b) Experimental and numerical results for the tunable polarization converter for cases where the half-wave plate is rotated by 0, 30, 60 and 90 degrees and the incident angle is 45 degrees. Note that r con and r unc denote the amplitude conversion efficiencies from the polarization state marked by E i into the polarization states marked by E con and E unc respectively.
Figure 6Signal-flow picture for the rigorous analysis of the proposed broadband half-wave plate. (a) Case where the grounded dielectric slab has an infinite thickness. (b) Case where the grounded dielectric slab has a finite thickness. (c) The deduced signal-flow chart for the rigorous analysis of the proposed broadband half-wave plate. Note that the blue and red colors denote the co-polarized and cross-polarized channels respectively.
Figure 7Eigen-mode picture for the general analysis of the proposed broadband half-wave plate. (a) Case of TE eigen-mode excitation. (b) Case of TM eigen-mode excitation. Note that for genericity the grating wire is positioned away from the middle plane of the dielectric slab and the incident angle is oblique.