| Literature DB >> 24679300 |
U Zastrau1, P Sperling2, M Harmand3, A Becker2, T Bornath2, R Bredow2, S Dziarzhytski3, T Fennel2, L B Fletcher4, E Förster5, S Göde2, G Gregori6, V Hilbert7, D Hochhaus8, B Holst2, T Laarmann9, H J Lee4, T Ma10, J P Mithen6, R Mitzner11, C D Murphy6, M Nakatsutsumi12, P Neumayer8, A Przystawik3, S Roling11, M Schulz3, B Siemer11, S Skruszewicz2, J Tiggesbäumker2, S Toleikis3, T Tschentscher12, T White6, M Wöstmann11, H Zacharias11, T Döppner10, S H Glenzer4, R Redmer2.
Abstract
We report on the dynamics of ultrafast heating in cryogenic hydrogen initiated by a ≲300 fs, 92 eV free electron laser x-ray burst. The rise of the x-ray scattering amplitude from a second x-ray pulse probes the transition from dense cryogenic molecular hydrogen to a nearly uncorrelated plasmalike structure, indicating an electron-ion equilibration time of ∼0.9 ps. The rise time agrees with radiation hydrodynamics simulations based on a conductivity model for partially ionized plasma that is validated by two-temperature density-functional theory.Entities:
Year: 2014 PMID: 24679300 DOI: 10.1103/PhysRevLett.112.105002
Source DB: PubMed Journal: Phys Rev Lett ISSN: 0031-9007 Impact factor: 9.161