| Literature DB >> 32290498 |
Dmitriy Yavorskiy1,2, Maria Szoła2, Krzysztof Karpierz1, Rafał Rudniewski3,4, Rafał Bożek1, Grzegorz Karczewski3, Tomasz Wojtowicz4, Jerzy Wróbel3, Jerzy Łusakowski1.
Abstract
Grating metamaterials were fabricated with electron beam lithography on CdTe/CdMgTe modulation doped structures with two non-interacting quantum wells. Two types of samples were studied: with etched gratings and with gratings formed by deposition of Au stripes. The polarization properties at THz frequencies of the gratings were determined at room temperature. It was shown that Au gratings formed a linear polarizer, while etched gratings did not polarize THz radiation. Transmission of circularly polarized THz radiation at low temperatures through a sample with no grating showed a strongly circularly polarized cyclotron resonance transition. Transmission of this radiation through a sample with an etched grating showed a magnetoplasmon transition that was almost perfectly linearly polarized. We concluded that magnetoplasmons in metamaterials with etched gratings are linearly polarized excitations, possibly with a small contribution of a circular component. This work opens the possibility of the detailed study of the polarization of magnetoplasmons, which has not been explored in the past.Entities:
Keywords: THz spectroscopy; magnetoplasmons; metamaterials; polarization
Year: 2020 PMID: 32290498 PMCID: PMC7215284 DOI: 10.3390/ma13081811
Source DB: PubMed Journal: Materials (Basel) ISSN: 1996-1944 Impact factor: 3.623
Figure 1SEM photographs of the layered structure of the sample studied. QW1 and QW2 are the quantum wells. SPSL, short period superlattice.
Figure 2AFM photographs of the surface of samples with etched (left) and evaporated (right) grating. The period of grating is equal to 8 μm in both cases.
Figure 3An experimental setup for testing the polarization properties of samples at room temperature.
Figure 4Polar plots of the transmission of linearly polarized radiation with the wavelength equal to 118.8 μm through samples with Au gratings of period . An angle of zero corresponds to the horizontal orientation of the grating’s bars. The laser radiation is linearly polarized in the vertical direction.
Figure 5Polar plots of the transmission of linearly polarized radiation (the wavelength equal to 118.8 μm) through samples with etched gratings of a period equal to 8 μm and the depth of grooves D. An angle of zero corresponds to the horizontal orientation of the grating’s bars. The laser radiation is linearly polarized in the vertical direction.
Figure 6Transmission spectra (at 2 K) through an unprocessed sample (red) and through the sample with the etched grating with D = 105 nm and = 8 μm. CR and MP resonances are marked with arrows. Insets (a,b) show the transmission (at 300 K) of linearly and circularly polarized radiation through the sample with the etched grating with D = 105 nm. An angle of zero corresponds to the horizontal orientation of the grating’s bars. The laser radiation is linearly polarized in the vertical direction.
Figure 7Dependence of the magnetic field at which an MP resonance occurs as a function of the MP wave vector (red line). The horizontal magenta line shows the magnetic field of 9.105 T at which the MP resonance was observed. The vertical magenta line shows the MP wave vector for = 8 μm. Other parameters of the calculations are given in the main text.