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Marlene Rosenberg

Publications and source records attributed to Marlene Rosenberg.

3 recordsLinked to original sources

Influence of Temporal Variations in Plasma Conditions on the Electric Potential Near Self-Organized Dust Chains

The self-organization of dust grains into stable filamentary dust structures (or "chains") largely depends on dynamic interactions between the individual charged dust grains and the complex electric potential arising from the distribution of charges within the local plasma environment. Recent studies have shown that the positive column of the gas discharge plasma in the Plasmakristall-4 (PK-4) experiment onboard the International Space Station (ISS) supports the presence of fast-moving ionization waves, which lead to variations of plasma parameters by up to an order of magnitude from the average background values. The highly-variable environment resulting from ionization waves may have interesting implications for the dynamics and self-organization of dust particles, particularly concerning the formation and stability of dust chains. Here we investigate the electric potential surrounding dust chains in the PK-4 by employing a molecular dynamics model of the dust and ions with boundary conditions supplied by a Particle-in-Cell with Monte Carlo collisions (PIC-MCC) simulation of the ionization waves. The model is used to examine the effects of the plasma conditions within different regions of the ionization wave and compare the resulting dust structure to that obtained by employing the time-averaged plasma conditions. Comparison between simulated dust chains and experimental data from the PK-4 shows that the time-averaged plasma conditions do not accurately reproduce observed results for dust behavior, indicating that more careful treatment of plasma conditions in the presence of ionization waves is required. It is further shown that commonly used analytic forms of the electric potential do not accurately describe the electric potential near charged dust grains under these plasma conditions.

physics.plasm-ph↗

The sound speed in Yukawa one component plasmas across coupling regimes

A many-body system of charged particles interacting via a pairwise Yukawa potential, the so-called Yukawa One Component Plasma (YOCP) is a good approximation for a variety of physical systems. Such systems are completely characterized by two parameters; the screening parameter, $κ$, and the nominal coupling strength, $Γ$. It is well known that the collective spectrum of the YOCP is governed by a longitudinal acoustic mode, both in the weakly and strongly coupled regimes. In the long-wavelength limit the linear term in the dispersion (\textit{i.e.} $ω= s k$) defines the sound speed $s$. We study the evolution of this latter quantity from the weak through the strong coupling regimes by analyzing the Dynamic Structure Function $S(k,ω)$ in the low frequency domain. Depending on the values of $Γ$ and $κ$ and $w = s/v_{\textrm{th}}$, (\textit{i.e.} the ratio between the phase velocity of the wave and thermal speed of the particles) we identify five domains in the $(κ,Γ)$ parameter space in which the physical behavior of the YOCP exhibits different features. The competing physical processes are the collective Coulomb like vs. binary collision dominated behavior and the individual particle motion vs. quasi-localization. Our principal tool of investigation is Molecular Dynamics (MD) computer simulation from which we obtain $S(k,ω)$. Recent improvements in the simulation technique have allowed us to obtain a large body of high quality data in the range $Γ= \{0.1 - 10,000\}$ and $κ= \{0.5 -5\}$. The theoretical results based on various models are compared in order to see which one provides the most cogent physical description and the best agreement with MD data in the different domains.

physics.plasm-ph↗

Ground state structures of superparamagnetic 2D dusty plasma crystals

Ground state structures of finite, cylindrically confined two-dimensional Yukawa systems composed of charged superparamagnetic dust grains in an external magnetic field are investigated numerically, using molecular dynamic simulations and lattice summation methods. The ground state configuration of the system is identified using, as an approximation, the experimentally obtained shape of the horizontal confinement potential in a classical single layer dusty plasma experiment with non-magnetic grains. Results are presented for the dependence of the number density and lattice parameters of the dust layer on (1) the ratio of the magnetic dipole-dipole force to electrostatic force between the grains and (2) the orientation of the grain magnetic moment with respect to the layer.

physics.plasm-ph↗