Structure formation by electrostatic interactions in strongly coupled medium
Mamta Yadav, Priya Deshwal, Srimanta Maity, Amita Das

TL;DR
This paper investigates structure formation in strongly coupled electrostatic media using molecular dynamics simulations, revealing diverse bound states, partial crystallization, and dynamic clustering phenomena influenced by localized perturbations.
Contribution
It introduces a detailed MD simulation study of electrostatic structure formation in 2D and 3D strongly coupled media, highlighting non-crystalline bound states and shielding cloud dynamics.
Findings
Formation of various classical bound states.
Partial crystallization without full system crystallization.
Localized perturbations induce shielding clouds and dynamic clustering.
Abstract
The formation of correlated structures is of importance in many diverse contexts such as strongly coupled plasmas, soft matter, and even biological mediums. In all these contexts the dynamics are mainly governed by electrostatic interactions and result in the formation of a variety of structures. In this study, the process of formation of structures is investigated with the help of Molecular (MD) simulations in 2 and 3 dimensions. The overall medium has been modelled with an equal number of positive and negatively charged particles interacting via long-range pair Coulomb potential. A repulsive short-range Lennard-Jones (LJ) potential is added to take care of the blowing up of attractive Coulomb interaction between unlike charges. In the strongly coupled regime, a variety of classical bound states form. However, complete crystallization of the system, as typically observed in the context…
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Taxonomy
TopicsDust and Plasma Wave Phenomena · Material Dynamics and Properties · Statistical Mechanics and Entropy
