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A quasi-molecular dynamics simulation study on the effect of particles collisions in pulsed-laser desorption

Author

Listed:
  • Xinyu-Tan,
  • Duanming-Zhang,
  • Shengqin-Feng,
  • Li, Zhi-hua
  • Li, Guan
  • Li, Li
  • Dan, Liu

Abstract

The dynamics characteristic and effect of atoms and particulates ejected from the surface generated by nanosecond pulsed-laser ablation are very important. In this work, based on the consideration of the inelasticity and non-uniformity of the plasma particles thermally desorbed from a plane surface into vacuum induced by nanosecond laser ablation, the one-dimensional particles flow is studied on the basis of a quasi-molecular dynamics (QMD) simulation. It is assumed that atoms and particulates ejected from the surface of a target have a Maxwell velocity distribution corresponding to the surface temperature. Particles collisions in the ablation plume. The particles mass is continuous and satisfies fractal theory distribution. Meanwhile, the particles are inelastic. Our results show that inelasticity and non-uniformity strongly affect the dynamics behavior of the particles flow. Along with the decrease of restitution coefficient e and increase of fractional dimension D, velocity distributions of plasma particles system all deviate from the initial Gaussian distribution. The increasing of dissipation energy ΔE leads to density distribution clusterized and closed up to the center mass. Predictions of the particles action based on the proposed fractal and inelasticity model are found to be in agreement with the experimental observation. This verifies the validity of the present model for the dynamics behavior of pulsed-laser-induced particles flow.

Suggested Citation

  • Xinyu-Tan, & Duanming-Zhang, & Shengqin-Feng, & Li, Zhi-hua & Li, Guan & Li, Li & Dan, Liu, 2006. "A quasi-molecular dynamics simulation study on the effect of particles collisions in pulsed-laser desorption," Physica A: Statistical Mechanics and its Applications, Elsevier, vol. 363(2), pages 307-314.
  • Handle: RePEc:eee:phsmap:v:363:y:2006:i:2:p:307-314
    DOI: 10.1016/j.physa.2005.11.022
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