Molecular Dynamics Study of Structural Properties in a Strongly Coupled One-Component Plasma using Lammps

المؤلفون

  • Abubakar Danyarima
    Department of Physics, Faculty of Physical Sciences, Federal University of Lafia
  • Muhammad Sanusi Liman
    Department of Physics, Faculty of Physical Sciences, Federal University of Lafia.
  • Otto Muhammed Sani Otto
    Department of Physics, Faculty of Physical Sciences, Federal University of Lafia.
  • Faisal Muhammad Usman
    Department of Physics, Faculty of Physical Sciences, Federal University of Lafia.
  • Kamal Muhammad Gonto
    Department of Physics, Faculty of Physical Sciences, Federal University of Lafia.
  • Zahra Sanusi Liman
    Department of Physics, Faculty of Physical Sciences, Federal University of Lafia.

الكلمات المفتاحية:

Array، Array، Array، Array، Array

الملخص

The study uses molecular dynamics simulations with LAMMPS to examine a model liquid plasma system which exhibits structural and dynamical properties of a strongly coupled Yukawa-type One-Component Plasma. The phase behavior is methodically investigated over a broad range of coupling strengths., requirements for screening bridging the gap between crystalline solids and weakly coupled gaseous plasmas. The study uses three techniques which include phase space diagrams, Mean Squared Displacement and Radial Distribution Functions to trace the changes which occur throughout the system. The results demonstrate an explicit shift from a disordered gas-like state which occurs at low coupling to a liquid state which has strong short-range order (20.0 ≤ Γ ≤100.0), and ultimately a solid-like state which has crystalline properties at extremely high coupling. The analysis method called "Structural Order vs. Coupling Strength" measures structural order through the first peak height in the RDF which shows a direct relationship with Γ as it increases. The dynamic MSD studies demonstrate that local structure development in RDFs occurs together with caged particle movement initiation while system coupling advancement leads to reduced diffusion rates. The research provides a strong computational system which scientists use to study liquid plasma systems and it enables them to identify phase transitions and study atomic-scale structures and analyze material behavior under extreme conditions. The research results provide crucial support for developing theoretical models which scientists use to study astrophysical plasma systems and inertial confinement fusion, high-energy-density physics because understanding dense plasma states requires knowledge of strongly coupled systems.

Dimensions

Ichimaru, S. (1982). Strongly coupled plasmas: High-density classical plasmas and degenerate electron liquids. Reviews of Modern Physics, 54(4), 1017–1059. https://doi.org/10.1103/RevModPhys.54.1017

Fortov, V. E., Ivlev, A. V., Khrapak, S. A., Khrapak, A. G., & Morfill, G. E. (2005). Complex (dusty) plasmas: Current status, open issues, perspectives. Physics Reports, 421, 1–103. https://doi.org/10.1016/j.physrep.2005.08.007

Morfill, G. E., & Ivlev, A. V. (2009). Complex plasmas: An interdisciplinary research field. Reviews of Modern Physics, 81(4), 1353–1404. https://doi.org/10.1103/RevModPhys.81.1353

Brush, S. G., Sahlin, H. L., & Teller, E. (1966). Monte Carlo Study of a One‐Component Plasma. I. The Journal of Chemical Physics, 45(6), 2102–2118. https://doi.org/10.1063/1.1727895

Baus, M., & Hansen, J.-P. (1980). Statistical mechanics of simple coulomb systems. Physics Reports, 59(1), 1–94. https://doi.org/10.1016/0370-1573(80)90022-8

Robbins, Mark. O., Kremer, K., & Grest, G. S. (1988). Phase diagram and dynamics of Yukawa systems. The Journal of Chemical Physics, 88(5), 3286–3312. https://doi.org/10.1063/1.453924

Hamaguchi, S., Farouki, R. T., & Dubin, D. H. E. (1996). Phase diagram of Yukawa systems near the one‐component‐plasma limit revisited. The Journal of Chemical Physics, 105(17), 7641–7647. https://doi.org/10.1063/1.472802

Vaulina, O., Khrapak, S., & Morfill, G. (2002). Universal scaling in complex (dusty) plasmas. Physical Review E, 66(1), 016404. https://doi.org/10.1103/PhysRevE.66.016404

Hansen, J.-P., & McDonald, I. R. (2013). Theory of Simple Liquids: With Applications to Soft Matter. Academic Press.

Plimpton, S. (1995). Fast Parallel Algorithms for Short-Range Molecular Dynamics. Journal of Computational Physics, 117(1), 1–19. https://doi.org/10.1006/jcph.1995.1039

Donkó, Z., Schulze, J., Heil, B. G., & Czarnetzki, U. (2008). PIC simulations of the separate control of ion flux and energy in CCRF discharges via the electrical asymmetry effect. Journal of Physics D: Applied Physics, 42(2), 025205. https://doi.org/10.1088/0022-3727/42/2/025205

Ribeiro, M. I. (2004). Kalman and extended kalman filters: Concept, derivation and properties. Institute for Systems and Robotics, 43(46), 3736–3741. https://www.academia.edu/download/81315221/kalman.pdf

Dolai, B., & Prajapati, R. P. (2020). Effects of flow Velocity and Density of Dust Layers on the Kelvin- Helmholtz Instability in Strongly Coupled Dusty Plasma: Molecular Dynamic Study.

Neyts, E. C., & Brault, P. (2017). Molecular Dynamics Simulations for Plasma-Surface Interactions. Plasma Processes and Polymers, 14(1–2), 1600145. https://doi.org/10.1002/ppap.201600145

AlHasan, H. (2023). A Program for Generating Molecular Dynamic Simulations.

Martyna, G. J., Tobias, D. J., & Klein, M. L. (1994). Constant pressure molecular dynamics algorithms. The Journal of Chemical Physics, 101(5), 4177–4189. https://doi.org/10.1063/1.467468

Zoppi, & M, B., U. ,. (1994). Dynamics of the Liquid State | CiNii Research. https://cir.nii.ac.jp/crid/1360863107709599744

cover

منشور

2026-04-15

كيفية الاقتباس

Molecular Dynamics Study of Structural Properties in a Strongly Coupled One-Component Plasma using Lammps. (2026). Lafia Journal of Scientific and Industrial Research, 4(1), 157-167. https://doi.org/10.62050/ljsir2026.v4n1.782

كيفية الاقتباس

Molecular Dynamics Study of Structural Properties in a Strongly Coupled One-Component Plasma using Lammps. (2026). Lafia Journal of Scientific and Industrial Research, 4(1), 157-167. https://doi.org/10.62050/ljsir2026.v4n1.782

الأعمال الأكثر قراءة لنفس المؤلف/المؤلفين

المؤلفات المشابهة

يمكنك أيضاً إبدأ بحثاً متقدماً عن المشابهات لهذا المؤلَّف.