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Vol 122, No 5 (2016)

Atoms, Molecules, Optics

The formation of quantum images and their transformation and super-resolution reading

Balakin D.A., Belinsky A.V.

Abstract

Images formed by light with suppressed photon fluctuations are interesting objects for studies with the aim of increasing their limiting information capacity and quality. This light in the sub-Poisson state can be prepared in a resonator filled with a medium with Kerr nonlinearity, in which self-phase modulation takes place. Spatially and temporally multimode light beams are studied and the production of spatial frequency spectra of suppressed photon fluctuations is described. The efficient operation regimes of the system are found. A particular schematic solution is described, which allows one to realize the potential possibilities laid in the formation of the squeezed states of light to a maximum degree during self-phase modulation in a resonator for the maximal suppression of amplitude quantum noises upon two-dimensional imaging. The efficiency of using light with suppressed quantum fluctuations for computer image processing is studied. An algorithm is described for interpreting measurements for increasing the resolution with respect to the geometrical resolution. A mathematical model that characterizes the measurement scheme is constructed and the problem of the image reconstruction is solved. The algorithm for the interpretation of images is verified. Conditions are found for the efficient application of sub-Poisson light for super-resolution imaging. It is found that the image should have a low contrast and be maximally transparent.

Journal of Experimental and Theoretical Physics. 2016;122(5):787-801
pages 787-801 views

Emission of photons by positrons channeled in single crystals near an energy of 100 GeV

Maisheev V.A., Chesnokov Y.A., Chirkov P.N., Yazynin I.A., Bolognini D., Hasan S., Prest M., Vallazza E.

Abstract

Emission by 120-GeV positrons in the channeling regime in the (011) plane of a silicon single crystal has been considered. Trajectories of positrons under different initial conditions have been calculated within the theory of nonlinear oscillations. The amplitude distribution function of channeled particles has been determined taking into account the nonlinearity of their motion. The intensity of radiation under various initial conditions has been calculated by two different methods. These results can be useful for comparison with experimental data at energies of positrons beginning with 100 GeV and higher.

Journal of Experimental and Theoretical Physics. 2016;122(5):802-812
pages 802-812 views

Effect of the corrected ionization potential and spatial distribution on the angular and energy distribution in tunnel ionization

Petrović V.M., Miladinović T.B.

Abstract

Within the framework of the Ammosov–Delone–Krainov theory, we consider the angular and energy distribution of outgoing electrons due to ionization by a circularly polarized electromagnetic field. A correction of the ground ionization potential by the ponderomotive and Stark shift is incorporated in both distributions. Spatial dependence is analyzed.

Journal of Experimental and Theoretical Physics. 2016;122(5):813-817
pages 813-817 views

The contribution of bends and constrictions of a superconducting film to the photon detection by a single-photon superconducting detector

Zotova A.N.

Abstract

The contribution of bends and constrictions by a superconducting film to the detection by a singlephoton superconducting detector is investigated. It has been shown that, for currents smaller than the minimal detection current of a straight film, the detection efficiency of a film with a constriction attains saturation upon an increase in the current, which coincides qualitatively with the behavior of this dependence observed in the experiment. It has also been found that the effect of bends in the film and the external magnetic field on the detection efficiency for low-energy photons is essential, while for high-energy photons no such influence is observed.

Journal of Experimental and Theoretical Physics. 2016;122(5):818-822
pages 818-822 views

Structure of magnetic resonance in 87Rb atoms

Kozlov A.N., Zibrov S.A., Zibrov A.A., Yudin V.I., Taichenachev A.V., Yakovlev V.P., Tsygankov E.A., Zibrov A.S., Vassiliev V.V., Velichansky V.L.

Abstract

Magnetic resonance at the Fg = 1 \( \rightleftarrows \)Fe = 1 transition of the D1 line in 87Rb has been studied with pumping and detection by linearly polarized radiation and detection at the double frequency of the radiofrequency field. The intervals of allowed values of the static and alternating magnetic fields in which magnetic resonance has a single maximum have been found. The structure appearing beyond these intervals has been explained. It has been shown that the quadratic Zeeman shift is responsible for the three-peak structure of resonance; the radiofrequency shift results in the appearance of additional extrema in resonance, which can be used to determine the relaxation constant Γ2. The possibility of application in magnetometry has been discussed.

Journal of Experimental and Theoretical Physics. 2016;122(5):823-831
pages 823-831 views

Nuclei, Particles, Fields, Gravitation, and Astrophysics

Nonlinear wave interactions in shallow water magnetohydrodynamics of astrophysical plasma

Klimachkov D.A., Petrosyan A.S.

Abstract

The rotating magnetohydrodynamic flows of a thin layer of astrophysical and space plasmas with a free surface in a vertical external magnetic field are considered in the shallow water approximation. The presence of a vertical external magnetic field changes significantly the dynamics of wave processes in an astrophysical plasma, in contrast to a neutral fluid and a plasma layer in an external toroidal magnetic field. There are three-wave nonlinear interactions in the case under consideration. Using the asymptotic method of multiscale expansions, we have derived nonlinear equations for the interaction of wave packets: three magneto- Poincare waves, three magnetostrophic waves, two magneto-Poincare and one magnetostrophic waves, and two magnetostrophic and one magneto-Poincare waves. The existence of decay instabilities and parametric amplification is predicted. We show that a magneto-Poincare wave decays into two magneto-Poincare waves, a magnetostrophic wave decays into two magnetostrophic waves, a magneto-Poincare wave decays into one magneto-Poincare and one magnetostrophic waves, and a magnetostrophic wave decays into one magnetostrophic and one magneto-Poincare waves. There are the following parametric amplification mechanisms: the parametric amplification of magneto-Poincare waves, the parametric amplification of magnetostrophic waves, the amplification of a magneto-Poincare wave in the field of a magnetostrophic wave, and the amplification of a magnetostrophic wave in the field of a magneto-Poincare wave. The instability growth rates and parametric amplification factors have been found for the corresponding processes.

Journal of Experimental and Theoretical Physics. 2016;122(5):832-848
pages 832-848 views

Instability analysis of a cylindrical stellar object in Brans–Dicke gravity

Sharif M., Manzoor R.

Abstract

This paper investigates instability ranges of a cylindrically symmetric collapsing cosmic filamentary structure in the Brans–Dicke theory of gravity. For this purpose, we use a perturbating approach to the modified field equations as well as dynamic equations and construct a collapse equation. The collapse equation with an adiabatic index (Γ) is used to explore the instability ranges of both isotropic and anisotropic fluid in Newtonian and post-Newtonian approximations. It turns out that the instability ranges depend on the dynamic variables of collapsing filaments. We conclude that the system always remains unstable for 0 < Γ < 1, while Γ > 1 provides instability only in a special case.

Journal of Experimental and Theoretical Physics. 2016;122(5):849-858
pages 849-858 views

Solids and Liquids

Viscous and acoustic properties of AlCu melts

Khusnutdinoff R.M., Mokshin A.V., Menshikova S.G., Beltyukov A.L., Ladyanov V.I.

Abstract

The atomic dynamics of the binary Al100–xCux system is simulated at a temperature T = 973 K, a pressure p = 1.0 bar, and various copper concentrations x. These conditions (temperature, pressure) make it possible to cover the equilibrium liquid Al100–xCux phase at copper concentrations 0 ≤ x ≤ 40% and the supercooled melt in the concentration range 40% ≤ x ≤ 100%. The calculated spectral densities of the time correlation functions of the longitudinal \({\tilde C_L}\)(k, ω) and transverse \({\tilde C_T}\)(k, ω) currents in the Al100–xCux melt at a temperature T = 973 K reveal propagating collective excitations of longitudinal and transverse polarizations in a wide wavenumber range. It is shown that the maximum sound velocity in the vL(x) concentration dependence takes place for the equilibrium melt at an atomic copper concentration x = 10 ± 5%, whereas the supercooled Al100–xCux melt saturated with copper atoms (x ≥ 40%) is characterized by the minimum sound velocity. In the case of the supercooled melt, the concentration dependence of the kinematic viscosity ν(x) is found to be interpolated by a linear dependence, and a deviation from the linear dependence is observed in the case of equilibrium melt at x < 40%. An insignificant shoulder in the ν(x) dependence is observed at low copper concentrations (x < 20%), and it is supported by the experimental data. This shoulder is caused by the specific features in the concentration dependence of the density ρ(x).

Journal of Experimental and Theoretical Physics. 2016;122(5):859-868
pages 859-868 views

Discrete breathers in graphane: Effect of temperature

Baimova J.A., Murzaev R.T., Lobzenko I.P., Dmitriev S.V., Zhou K.

Abstract

The discrete breathers in graphane in thermodynamic equilibrium in the temperature range 50–600 K are studied by molecular dynamics simulation. A discrete breather is a hydrogen atom vibrating along the normal to a sheet of graphane at a high amplitude. As was found earlier, the lifetime of a discrete breather at zero temperature corresponds to several tens of thousands of vibrations. The effect of temperature on the decay time of discrete breathers and the probability of their detachment from a sheet of graphane are studied in this work. It is shown that closely spaced breathers can exchange energy with each other at zero temperature. The data obtained suggest that thermally activated discrete breathers can be involved in the dehydrogenation of graphane, which is important for hydrogen energetics.

Journal of Experimental and Theoretical Physics. 2016;122(5):869-873
pages 869-873 views

Order, Disorder, and Phase Transition in Condensed System

Magnetic, thermal, and electrical properties of an Ni45.37Mn40.91In13.72 Heusler alloy

Batdalov A.B., Aliev A.M., Khanov L.N., Buchel’nikov V.D., Sokolovskii V.V., Koledov V.V., Shavrov V.G., Mashirov A.V., Dil’mieva E.T.

Abstract

The magnetization, the electrical resistivity, the specific heat, the thermal conductivity, and the thermal diffusion of a polycrystalline Heusler alloy Ni45.37Mn40.91In13.72 sample are studied. Anomalies, which are related to the coexistence of martensite and austenite phases and the change in their ratio induced by a magnetic field and temperature, are revealed and interpreted. The behavior of the properties of the alloy near Curie temperature TC also demonstrates signs of a structural transition, which suggests that the detected transition is a first-order magnetostructural phase transition. The nontrivial behavior of specific heat detected near the martensite transformation temperatures is partly related to a change in the electron density of states near the Fermi level. The peculiar peak of phonon thermal conductivity near the martensitic transformation is interpreted as a consequence of the appearance of additional soft phonon modes, which contribute to the specific heat and the thermal conductivity.

Journal of Experimental and Theoretical Physics. 2016;122(5):874-882
pages 874-882 views

Thermodynamic properties of a hard/soft-magnetic bilayer model

Taaev T.A., Khizriev K.S., Murtazaev A.K.

Abstract

A model for describing the thermodynamic properties of a hard/soft-magnetic bilayer is proposed and thoroughly studied using the Monte Carlo method. Temperature dependences of the heat capacity, total magnetization, magnetizations of the hard- and soft-magnetic layers, total magnetic susceptibility, and susceptibilities of the hard- and soft-magnetic layers have been calculated by this method in the framework of the proposed model. The obtained temperature dependences of the heat capacity and magnetic susceptibility display double maxima that result from the two phase transitions that take place in the system. The influence of system dimensions on the thermodynamic properties of the model has been considered.

Journal of Experimental and Theoretical Physics. 2016;122(5):883-889
pages 883-889 views

Optical evidence of quantum rotor orbital excitations in orthorhombic manganites

Kovaleva N.N., Kugel K.I., Potůček Z., Kusmartseva O.E., Goryachev N.S., Bryknar Z., Demikhov E.I., Trepakov V.A., Dejneka A., Kusmartsev F.V., Stoneham A.M.

Abstract

In magnetic compounds with Jahn–Teller (JT) ions (such as Mn3+ or Cu2+), the ordering of the electron or hole orbitals is associated with cooperative lattice distortions. There the role of JT effect, although widely recognized, is still elusive in the ground state properties. Here we discovered that, in these materials, there exist excitations whose energy spectrum is described in terms of the total angular momentum eigenstates and is quantized as in quantum rotors found in JT centers. We observed features originating from these excitations in the optical spectra of a model compound LaMnO3 using ellipsometry technique. They appear clearly as narrow sidebands accompanying the electron transition between the JT split orbitals at neighboring Mn3+ ions, displaying anomalous temperature behavior around the Néel temperature TN ≈ 140 K. We present these results together with new experimental data on photoluminescence found in LaMnO3, which lend additional support to the ellipsometry implying the electronic-vibrational origin of the quantum rotor orbital excitations. We note that the discovered orbital excitations of quantum rotors may play an important role in many unusual properties observed in these materials upon doping, such as high-temperature superconductivity and colossal magnetoresistance.

Journal of Experimental and Theoretical Physics. 2016;122(5):890-901
pages 890-901 views

Statistical, Nonlinear, and Soft Matter Physics

Influence of nonlinear interactions on the development of instability in hydrodynamic wave systems

Romanova N.N., Chkhetiani O.G., Yakushkin I.G.

Abstract

The problem of the development of shear instability in a three-layer medium simulating the flow of a stratified incompressible fluid is considered. The hydrodynamic equations are solved by expanding the Hamiltonian in a small parameter. The equations for three interacting waves, one of which is unstable, have been derived and solved numerically. The three-wave interaction is shown to stabilize the instability. Various regimes of the system’s dynamics, including the stochastic ones dependent on one of the invariants in the problem, can arise in this case. It is pointed out that the instability development scenario considered differs from the previously considered scenario of a different type, where the three-wave interaction does not stabilize the instability. The interaction of wave packets is considered briefly.

Journal of Experimental and Theoretical Physics. 2016;122(5):902-914
pages 902-914 views

Stratification of a two-phase monodisperse system in a plane laminar flow

Fedoseev V.B.

Abstract

A thermodynamic approach is used to describe the distribution of particles of a disperse phase in a plane laminar flow. The effect of the density, shape, and velocity of disperse particles in the flow is considered. Conditions are described under which various modes of stratification of the flow (near-wall, central, intermediate, and multilayer modes) arise. The equilibrium distributions obtained are self-similar; this allows one to compare the behavior of colloidal, highly disperse, coarsely disperse, and coarse-grain systems for various shear velocities and flow widths.

Journal of Experimental and Theoretical Physics. 2016;122(5):915-924
pages 915-924 views

Linear instability of plane Couette and Poiseuille flows

Chefranov S.G., Chefranov A.G.

Abstract

It is shown that linear instability of plane Couette flow can take place even at finite Reynolds numbers Re > Reth ≈ 139, which agrees with the experimental value of Reth ≈ 150 ± 5 [16, 17]. This new result of the linear theory of hydrodynamic stability is obtained by abandoning traditional assumption of the longitudinal periodicity of disturbances in the flow direction. It is established that previous notions about linear stability of this flow at arbitrarily large Reynolds numbers relied directly upon the assumed separation of spatial variables of the field of disturbances and their longitudinal periodicity in the linear theory. By also abandoning these assumptions for plane Poiseuille flow, a new threshold Reynolds number Reth ≈ 1035 is obtained, which agrees to within 4% with experiment—in contrast to 500% discrepancy for the previous estimate of Reth ≈ 5772 obtained in the framework of the linear theory under assumption of the “normal” shape of disturbances [2].

Journal of Experimental and Theoretical Physics. 2016;122(5):925-931
pages 925-931 views

Localized modes in optics of photonic liquid crystals with local anisotropy of absorption

Belyakov V.A., Semenov S.V.

Abstract

The localized optical modes in spiral photonic liquid crystals are theoretically studied for the certainty at the example of chiral liquid crystals (CLCs) for the case of CLC with an anisotropic local absorption. The model adopted here (absence of dielectric interfaces in the structures under investigation) makes it possible to get rid of mixing of polarizations on the surfaces of the CLC layer and of the defect structure and to reduce the corresponding equations to only the equations for light with polarization diffracting in the CLC. The dispersion equations determining connection of the edge mode (EM) and defect mode (DM) frequencies with the CLC layer parameters (anisotropy of local absorption, CLC order parameter) and other parameters of the DMS are obtained. Analytic expressions for the transmission and reflection coefficients of CLC layer and DMS for the case of CLC with an anisotropic local absorption are presented and analyzed. It is shown that the CLC layers with locally anisotropic absorption reduce the EM and DM lifetimes (and increase the lasing threshold) in the way different from the case of CLC with an isotropic local absorption. Due to the Borrmann effect revealing of which is different at the opposite stop-band edges in the case of CLC layers with an anisotropic local absorption the EM life-times for the EM frequencies at the opposite stop-bands edges may be significantly different. The options of experimental observations of the theoretically revealed phenomena are briefly discussed.

Journal of Experimental and Theoretical Physics. 2016;122(5):932-941
pages 932-941 views

Effect of an electric field on the orientation of a liquid crystal in a cell with a nonuniform director distribution

Aksenova E.V., Karetnikov A.A., Karetnikov N.A., Kovshik A.P., Ryumtsev E.I., Sakhatskii A.S., Svanidze A.V.

Abstract

The electric field-induced reorientation of a nematic liquid crystal in cells with a planar helicoidal or a homeoplanar structure of a director field is studied theoretically and experimentally. The dependences of the capacitances of these systems on the voltage in an applied electric field below and above the Fréedericksz threshold are experimentally obtained and numerically calculated. The calculations use the director distribution in volume that is obtained by direct minimization of free energy at various voltages. The inhomogeneity of the electric field inside a cell is taken into account. The calculation results are shown to agree with the experimental data.

Journal of Experimental and Theoretical Physics. 2016;122(5):942-949
pages 942-949 views

Exact solutions to the problem on the shape of an uncharged conducting liquid jet in a transverse electric field

Volkov N.B., Zubarev N.M., Zubareva O.V.

Abstract

Exact solutions are obtained for the problem of an equilibrium configuration of an uncharged cylindrical jet of a conducting liquid in a transverse electric field. The transverse cross section of the jet moving between two planar electrodes is deformed under the action of electrostatic forces (capillary forces play a stabilizing role). According to the solutions obtained, the initially circular cross section of the jet may be significantly (formally, unboundedly) stretched along the lines of forces of the field, and the boundaries of the jet asymptotically approach the electrodes.

Journal of Experimental and Theoretical Physics. 2016;122(5):950-955
pages 950-955 views

Erratum

Erratum to: “Resonance compression of an acoustic beam in a crystal”

Alshits V.I., Bessonov D.A., Lyubimov V.N.
Journal of Experimental and Theoretical Physics. 2016;122(5):956-956
pages 956-956 views