Showing posts with label Maxim Masyukov. Show all posts
Showing posts with label Maxim Masyukov. Show all posts

Monday, August 3, 2020

Abstract-Asymmetric graphene metamaterial for narrowband terahertz modulation


Alexander Grebenchukov, Maxim Masyukov, Anton Zaitsev, Mikhail Khodzitsky,


https://www.sciencedirect.com/science/article/abs/pii/S0030401820307161

The properties of planar three-layer asymmetric split-ring metamaterial are studied analytically by a coupled oscillator model and equivalent circuit model. These results are verified using full-wave numerical simulations. The influence of geometrical parameters of the proposed metamaterial structure, as well as graphene properties on the device terahertz spectral characteristics, are investigated in details. Such a comprehensive approach in graphene metamaterial description allows to design efficient narrowband modulator for a wide range of specific tasks including applications in terahertz sensing and switching.

Thursday, February 27, 2020

Abstract-Optically tunable terahertz chiral metasurface based on multi-layered graphene

Maxim Masyukov, Anna Vozianova, Alexander Grebenchukov, Kseniya Gubaidullina, Anton Zaitsev,  Mikhail Khodzitsky



https://www.nature.com/articles/s41598-020-60097-0

Active manipulation of the polarization states at terahertz frequencies is crucially helpful for polarization-sensitive spectroscopy, having significant applications such as non-contact Hall measurements, vibrational circular dichroism measurements and anisotropy imaging. The weakness of polarization manipulation provided by natural materials can be overcomed by chiral metamaterials. Chiral metamaterials have a huge potential to achieve the necessary polarization effects, hence they provide the basis for applications such as ultracompact polarization components. Terahertz chiral metamaterials that allow dynamic polarization modulation of terahertz waves are of great practical interest and still challenging. Here, we show that terahertz metasurface based on the four conjugated “petal” resonators integrated with multi-layered graphene (MLG) can enable dynamically tunable chiroptical response using optical pumping. In particular, a change of ellipticity angle of 20° is observed around 0.76 THz under optical pumping by a 980 nm continuous wave (CW) laser. Furthermore, using temporal coupled-mode theory, our study also reveals that the chiroptical response of the proposed multi-layered graphene-based metasurface is strongly dependent on the influence of optical pumping on the loss parameters of resonance modes, leading to actively controllable polarization states of the transmitted terahertz waves. The present work paves the way for the realization of fundamental terahertz components capable for active polarization manipulation.