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Probing atomic physics at ultrahigh pressure using laser-driven implosions.
Hu, S X; Bishel, David T; Chin, David A; Nilson, Philip M; Karasiev, Valentin V; Golovkin, Igor E; Gu, Ming; Hansen, Stephanie B; Mihaylov, Deyan I; Shaffer, Nathaniel R; Zhang, Shuai; Walton, Timothy.
Affiliation
  • Hu SX; Laboratory for Laser Energetics, University of Rochester, 250 East River Road, Rochester, NY, 14623-1299, USA. shu@lle.rochester.edu.
  • Bishel DT; Department of Mechanical Engineering, University of Rochester, Rochester, NY, 14623, USA. shu@lle.rochester.edu.
  • Chin DA; Laboratory for Laser Energetics, University of Rochester, 250 East River Road, Rochester, NY, 14623-1299, USA.
  • Nilson PM; Department of Physics and Astronomy, University of Rochester, Rochester, NY, 14627, USA.
  • Karasiev VV; Laboratory for Laser Energetics, University of Rochester, 250 East River Road, Rochester, NY, 14623-1299, USA.
  • Golovkin IE; Department of Physics and Astronomy, University of Rochester, Rochester, NY, 14627, USA.
  • Gu M; Laboratory for Laser Energetics, University of Rochester, 250 East River Road, Rochester, NY, 14623-1299, USA. pnil@lle.rochester.edu.
  • Hansen SB; Laboratory for Laser Energetics, University of Rochester, 250 East River Road, Rochester, NY, 14623-1299, USA.
  • Mihaylov DI; Prism Computational Sciences, 455 Science Drive, Madison, WI, 53711, USA.
  • Shaffer NR; Prism Computational Sciences, 455 Science Drive, Madison, WI, 53711, USA.
  • Zhang S; Sandia National Laboratories, 1515 Eubank SE, Albuquerque, NM, 87185-1196, USA.
  • Walton T; Laboratory for Laser Energetics, University of Rochester, 250 East River Road, Rochester, NY, 14623-1299, USA.
Nat Commun ; 13(1): 6780, 2022 Nov 16.
Article de En | MEDLINE | ID: mdl-36384992
ABSTRACT
Spectroscopic measurements of dense plasmas at billions of atmospheres provide tests to our fundamental understanding of how matter behaves at extreme conditions. Developing reliable atomic physics models at these conditions, benchmarked by experimental data, is crucial to an improved understanding of radiation transport in both stars and inertial fusion targets. However, detailed spectroscopic measurements at these conditions are rare, and traditional collisional-radiative equilibrium models, based on isolated-atom calculations and ad hoc continuum lowering models, have proved questionable at and beyond solid density. Here we report time-integrated and time-resolved x-ray spectroscopy measurements at several billion atmospheres using laser-driven implosions of Cu-doped targets. We use the imploding shell and its hot core at stagnation to probe the spectral changes of Cu-doped witness layer. These measurements indicate the necessity and viability of modeling dense plasmas with self-consistent methods like density-functional theory, which impact the accuracy of radiation transport simulations used to describe stellar evolution and the design of inertial fusion targets.

Texte intégral: 1 Collection: 01-internacional Base de données: MEDLINE Langue: En Journal: Nat Commun Sujet du journal: BIOLOGIA / CIENCIA Année: 2022 Type de document: Article Pays d'affiliation: États-Unis d'Amérique

Texte intégral: 1 Collection: 01-internacional Base de données: MEDLINE Langue: En Journal: Nat Commun Sujet du journal: BIOLOGIA / CIENCIA Année: 2022 Type de document: Article Pays d'affiliation: États-Unis d'Amérique