The importance of temperature-dependent collision frequency in PIC simulation on nanometric density evolution of highly-collisional strongly-coupled dense plasmas

Fuente: arXiv
Salvato in:
Dettagli Bibliografici
Autori principali: Banjafar, Mohammadreza, Randolph, Lisa, Huang, Lingen, Rahul, S. V., Preston, Thomas R., Yabuuchi, Toshinori, Makita, Mikako, Dover, Nicholas P., Göde, Sebastian, Kon, Akira, Koga, James K., Nishiuchi, Mamiko, Paulus, Michael, Rödel, Christian, Bussmann, Michael, Cowan, Thomas E., Gutt, Christian, Mancuso, Adrian P., Kluge, Thomas, Nakatsutsumi, Motoaki
Natura: Preprint
Pubblicazione: 2024
Soggetti:
Accesso online:
Tags: Aggiungi Tag
Nessun Tag, puoi essere il primo ad aggiungerne!!
_version_ 1866910421536997376
author Banjafar, Mohammadreza
Randolph, Lisa
Huang, Lingen
Rahul, S. V.
Preston, Thomas R.
Yabuuchi, Toshinori
Makita, Mikako
Dover, Nicholas P.
Göde, Sebastian
Kon, Akira
Koga, James K.
Nishiuchi, Mamiko
Paulus, Michael
Rödel, Christian
Bussmann, Michael
Cowan, Thomas E.
Gutt, Christian
Mancuso, Adrian P.
Kluge, Thomas
Nakatsutsumi, Motoaki
author_facet Banjafar, Mohammadreza
Randolph, Lisa
Huang, Lingen
Rahul, S. V.
Preston, Thomas R.
Yabuuchi, Toshinori
Makita, Mikako
Dover, Nicholas P.
Göde, Sebastian
Kon, Akira
Koga, James K.
Nishiuchi, Mamiko
Paulus, Michael
Rödel, Christian
Bussmann, Michael
Cowan, Thomas E.
Gutt, Christian
Mancuso, Adrian P.
Kluge, Thomas
Nakatsutsumi, Motoaki
contents Particle-in-Cell (PIC) method is a powerful plasma simulation tool for investigating high-intensity femtosecond laser-matter interaction. However, its simulation capability at high-density plasmas around the Fermi temperature is considered to be inadequate due, among others, to the necessity of implementing atomic-scale collisions. Here, we performed a one-dimensional with three-velocity space (1D3V) PIC simulation that features the realistic collision frequency around the Fermi temperature and atomic-scale cell size. The results are compared with state-of-the-art experimental results as well as with hydrodynamic simulation. We found that the PIC simulation is capable of simulating the nanoscale dynamics of solid-density plasmas around the Fermi temperature up to $\sim$2~ps driven by a laser pulse at the moderate intensity of $10^{14-15}$~$\mathrm{W/cm^{2}}$, by comparing with the state-of-the-art experimental results. The reliability of the simulation can be further improved in the future by implementing multi-dimensional kinetics and radiation transport.
format Preprint
id arxiv_https___arxiv_org_abs_2404_15813
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle The importance of temperature-dependent collision frequency in PIC simulation on nanometric density evolution of highly-collisional strongly-coupled dense plasmas
Banjafar, Mohammadreza
Randolph, Lisa
Huang, Lingen
Rahul, S. V.
Preston, Thomas R.
Yabuuchi, Toshinori
Makita, Mikako
Dover, Nicholas P.
Göde, Sebastian
Kon, Akira
Koga, James K.
Nishiuchi, Mamiko
Paulus, Michael
Rödel, Christian
Bussmann, Michael
Cowan, Thomas E.
Gutt, Christian
Mancuso, Adrian P.
Kluge, Thomas
Nakatsutsumi, Motoaki
Plasma Physics
Particle-in-Cell (PIC) method is a powerful plasma simulation tool for investigating high-intensity femtosecond laser-matter interaction. However, its simulation capability at high-density plasmas around the Fermi temperature is considered to be inadequate due, among others, to the necessity of implementing atomic-scale collisions. Here, we performed a one-dimensional with three-velocity space (1D3V) PIC simulation that features the realistic collision frequency around the Fermi temperature and atomic-scale cell size. The results are compared with state-of-the-art experimental results as well as with hydrodynamic simulation. We found that the PIC simulation is capable of simulating the nanoscale dynamics of solid-density plasmas around the Fermi temperature up to $\sim$2~ps driven by a laser pulse at the moderate intensity of $10^{14-15}$~$\mathrm{W/cm^{2}}$, by comparing with the state-of-the-art experimental results. The reliability of the simulation can be further improved in the future by implementing multi-dimensional kinetics and radiation transport.
title The importance of temperature-dependent collision frequency in PIC simulation on nanometric density evolution of highly-collisional strongly-coupled dense plasmas
topic Plasma Physics
url https://arxiv.org/abs/2404.15813