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B. B. Zelener

Publications and source records attributed to B. B. Zelener.

9 recordsLinked to original sources

Simulation of ultracold plasma expansion in homogeneous magnetic field

We present molecular dynamics simulation results for an ultracold $^{40}$Ca plasma in a constant, homogeneous magnetic field. The magnetic field induces a significant spatial separation of charges. Furthermore, a significant fraction of the electrons escapes from the region bounded by the ions, in contrast to the case of plasma expansion into a vacuum. This leads to the formation of a quasineutral plasma core containing the remaining electrons and surrounded by an outer, thick ion shell, where the ion density drops sharply. Anisotropy in the ion kinetic energy is also observed, depending on the direction of ion motion relative to the magnetic field lines. The simulation results are in agreement with experimental data on ion dynamics.

physics.plasm-ph↗

Influence of Many-Body Dipole-Dipole Interactions on Excitation Transfer in a Dense Gas

We study non-radiative dipole-dipole induced excitation transfer in dense Rb vapour. We show that density dependence of characteristic time of the excitation diffusion changes from linear to non-linear for high Rb density. It is attributed to the breakdown of binary collisions approach to the dipole-dipole excitation transfer. It is shown that the observed result can be qualitatively described if the mean free path is replaced by mean interatomic distance for the chracteristic diffusion length.

physics.atom-ph↗

Optical-field-induced dips and splits in nonlinear spectra of selective reflection from high-density atomic vapor

We discuss nonlinear spectra of selective reflection from high-density rubidium atomic vapor, where the self-broadening of the resonant transition $5S_{1/2}-5P_{3/2}$ dominates over the Doppler width. In the experiments, the hole-burning technique with probe and pump lasers is used. The reflection of weak probe beam is investigated at four atomic densities in the range $(1.2\text{--}3.6)\times10^{17}$~cm$^{-3}$ and various pump beam intensities. To enhance the spectral resolution, the frequency derivative $\text{d}R/\text{d}ν$ of the reflection coefficient $R$ is analyzed. Increasing the atomic number density changes the character of self-broadening from inhomogeneous to homogeneous. At the highest density, the strong pump field splits the observed spectra into two homogeneously broadened symmetric resonances. The appearance of the optical-field-induced resonances can be explained within the framework of "dressed atomic states" approach. At lower densities the spectral profiles are inhomogeneously broadened. Spectral profiles of the frequency derivative are separated by optically saturated dips. The width of such dips is a combination of the homogeneous component of self-broadening and intensity-dependent field broadening. Careful study of the transition from inhomogeneous to homogeneous broadening may initiate further development of the theory of interatomic interactions in high density atomic gas media.

physics.atom-ph↗

Pump-probe studies of resonantly saturated selective reflection from high-density rubidium vapor

Nonlinear selective reflection from the interface YAG window-high density rubidium vapor in the high-temperature cell is studied at the transition 5S$_{1/2}$-5P$_{3/2}$. In the experiment tunable pump and probe lasers are used. The selective reflection spectra for the laser probe beam are investigated at four different rubidium atomic densities and five different pump beam intensities. The estimated dipole-dipole interaction-induced line broadening varies from $13.2$ to $39.6$ GHz, the measured pumped intensities change from $1.2$ to $8.8$ kW$\cdot$cm$^{-2}$. Growth of the pump intensity causes reduction of the magnitude and the width of the recorded selective reflection resonance. We suggest developing all-optical modulators on the basis of nonlinear selective reflection.

physics.atom-ph↗

Electronic resonances in expanding non-neutral ultracold plasma

We present a calculation of the natural oscillation spectrum of inhomogeneous non-neutral ultracold plasma. The collective modes of these plasma oscillations are recorded in experiments as absorption resonances of radio-frequency electric field. It is shown that in the presence of friction of the electronic component, a discrete spectrum of plasma eigenoscillations is formed. Dependence of the frequency of these resonances on the charge imbalance and on the expansion time is obtained. Good agreement with the experiments of different authors is noted.

physics.plasm-ph↗

Steady-State Ultracold Plasma

A strongly coupled ultracold plasma can be used as an excellent test platform for studying many-body interactions associated with various plasma phenomena. In this paper we discuss an approach that makes possible creation of the steady-state ultracold plasma having various densities and temperatures by means of continuous two-step optical excitation of calcium atoms in the MOT. The parameters of the plasma are studied using laser-induced fluorescence of calcium ions. The experimental results are well described by a simple theoretical model involving equilibration of the continuous source of charged particles by the hydrodynamical ion outflux and three-body recombination. The strongly coupled plasma with the peak ion density of $6\cdot10^5$ cm$^{-3}$ and the minimum electron temperature near 2 K has been prepared. Our steady-state approach in combination with the strong magnetic confinement of the plasma will make it possible to reach extremely strong coupling in such system.

physics.plasm-ph↗

Electric field in spatially inhomogeneous non-neutral plasma

We present a general expression for the probability distribution function of electric field in a plasma cloud formed by the impact of a laser pulse on a gas or a solid body. We also present the results of numerical calculation of this function for the case of non-interacting particles depending on the plasma cloud size. It takes into account the ionic microfield and the macrofield arising from the charge imbalance. As the charge imbalance increases, the effect of a sharp increase in the distribution function for large field values is observed. Good agreement between the calculation of the shift of the spectral line and the experiment is obtained. The results obtained are of crucial importance for diagnosing plasma in various applications.

physics.plasm-ph↗

The ion wave formation during the ultracold plasma expansion

We present the results of direct simulation of the expansionof a two-component ultracold plasmafor various numbers of particles, densities, and electron temperatures. A description of the expansionprocess common to all plasma parameters is given. After the escape of fast electrons from the plasmacloud, the excess positive charge is localized at the outer boundary, in a narrow layer. This layerhas a characteristic front shape with a sharp drop in the charge concentration. The charged layerretains the remaining electrons during the entire expansion process. As the plasma expands, thespeed of movement of the charged layer becomes constant and significantly exceeds the sonic speedof ions. In addition, the dependence of the radial velocity of ions on the radius acquires a self-similarcharacter long before the final stage of expansion. On the basis of the calculation results, equationsand self-similar solutions are obtained. General dependences on plasma parameters are determined,which are compared with experimental data.

physics.plasm-ph↗

Self-focusing of CW Laser Beam with Variable Radius in Rubidium Atomic Vapor

Self-focusing of a cw laser beam in rubidium atomic vapor was studied. The beam power and beam spot size at entrance of a glass cell with the rubidium vapor were variable parameters. A steep grow of the threshold power of self-focusing for the small beam radii (< 30 μm) was observed. Our experimental data are in an agreement with the theoretical results published by Semak and Shneider in 2013. Additional experiments in resonance and transparent media are suggested in order to check and extend our measurements.

physics.optics↗