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Aleksey Girich

Publications and source records attributed to Aleksey Girich.

2 recordsLinked to original sources

Edge modes in 1D microwave photonic crystal

The microstrip of modulated width is a realization of a one-dimensional photonic crystal operating in the microwave regime. Like any photonic crystal, the periodic microstrip is characterised by the presence of frequency bands and band gaps that enable and prohibit wave propagation, respectively. The frequency bands for microstrip of symmetric unit cell can be distinguished by $0$ or $π$ Zak phase. The sum of these topological parameters for all bands below a given frequency gap determines the value of the surface impedance and whether or not edge modes are present at the end of the microstrip. We demonstrate that edge modes are absent in a finite microstrip terminated at both ends in the centres of unit cells, but they can be induced by adding the defected cells. Edge modes present at both ends of the microstrip enable microwave tunneling with high transitivity in the frequency gap with or without a change in phase. This has been demonstrated experimentally and developed in detail using numerical simulations and model calculations. The investigated system, with a doublet of edge modes in the frequency gap, can be considered as a narrow passband filter of high selectivity.

physics.app-ph

Manipulation over Surface Waves in Bilayer Hyperbolic Metasurfaces: Topological Transition and Multidirectional Canalization

Spoof surface plasmon-polariton is a type of surface wave propagating at the artificially engineered structures in microwave and terahertz ranges. These surface waves are highly important in planar photonic and on-chip devices, integrated circuits, lenses, sensors, and antennas applications. However, it is still a challenge to control the propagation regime of such surface waves including the wavefront shapes and propagation directions. In this letter, we study the surface waves in bilayer hyperbolic metasurfaces and show that interplay between two layers allows to manage their regime of propagation. We demonstrate the switching between angle and number of propagation directions of surface waves at the same frequency. Finally, we demonstrate experimentally the tunable multidirectional in-plane canalization of surface waves by adjusting directions of their propagation with angular range from 0 to 12.8 degrees. The discovered rotation-mediated interlayer coupling of hyperbolic metasurfaces paves way towards efficient in-plane transfer of localized electromagnetic signal.

physics.optics