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A. Bozhko

Publications and source records attributed to A. Bozhko.

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Experimental Signatures of Topological Transport in Polycrystalline FeSi Thin Films

Iron monosilicide $\epsilon$-FeSi has recently been predicted to host nontrivial topological states, yet experimental evidence remains scarce. Here we report transport signatures of Weyl semimetal behavior in polycrystalline $\epsilon$-FeSi films (65 nm thick) grown by solid-state reaction of Fe on Si (100). Below 200 K, the anomalous Hall conductivity $\sigma_{xy}^{AHE}$ becomes temperature-independent ($\sigma_{xy}^{AHE}$$\approx$14 S/sq.$\sim$ const($\sigma_{xx})$), unequivocally demonstrating an intrinsic anomalous Hall effect driven by Berry curvature. By comparing our data with the large set of data available in the literature for FeSi single crystals and polycrystalline/amorphous/crystalline FeSi thin films of thicknesses between 10 nm and 1 mm, we discover a universal scaling of $\rho_{xy}^{AHE}$$\sim$$\rho_{xx}^{2}$, which confirms the existence of surface-dominated electron transport. In this regime, the chiral anomaly manifests in both anisotropic longitudinal magnetoresistance and the planar Hall effect as well. The above observations establish $\epsilon$-FeSi as a Weyl semimetal and allow to relate $\sigma_{xy}^{AHE}$ to a "quantized" Hall response estimating the effective Weyl-point separation as $(k_{+}^W$$-$$k_{-}^{W})/(2\pi)$$\approx$0.36. Our findings confirm the topological origin of electron transport in $\epsilon$-FeSi and discover its potential as a new high temperature and noble metal-free Weyl semimetal.

cond-mat.str-el

Nonreciprocal transmission of sound in viscous fluid with asymmetric scatterers

Two common concepts of nonreciprocity in sound propagation are based on nonlinear effects [1, 2] and on local circulation of fluid [3, 4]. They originate from two known methods of breaking a time reversal symmetry, that is necessary for observation of nonreciprocal effects. Both concepts require additional devices to be installed with their own power sources. Recently it was demonstrated that acoustical losses may serve as a source of T-symmetry violation, thus leading to nonreciprocity in reflection of sound from gradient-index metasurface [5]. Here, we explore viscosity of fluid as a natural factor of T-symmetry breaking. We report experimental observation of the nonreciprocal transmission of ultrasound through a water-submerged phononic crystal consisting of asymmetric rods. Asymmetry, or broken P-symmetry, is the second necessary factor for nonreciprocity. Experimental results are in agreement with numerical simulations based on the Navier-Stokes equation. This passive nonreciprocal linear device is cheap, robust and does not require an energy source.

physics.flu-dyn