| Literature DB >> 29481207 |
Q Y van den Berg1, E V Fernandez-Tello2, T Burian3,4, J Chalupský3, H-K Chung5, O Ciricosta1, G L Dakovski6, V Hájková3, P Hollebon1, L Juha3,4, J Krzywinski6, R W Lee7, M P Minitti6, T R Preston1, A G de la Varga2, V Vozda3, U Zastrau8, J S Wark1, P Velarde2, S M Vinko1.
Abstract
Electron-ion collisional dynamics is of fundamental importance in determining plasma transport properties, nonequilibrium plasma evolution, and electron damage in diffraction imaging applications using bright x-ray free-electron lasers (FELs). Here we describe the first experimental measurements of ultrafast electron impact collisional ionization dynamics using resonant core-hole spectroscopy in a solid-density magnesium plasma, created and diagnosed with the Linac Coherent Light Source x-ray FEL. By resonantly pumping the 1s→2p transition in highly charged ions within an optically thin plasma, we have measured how off-resonance charge states are populated via collisional processes on femtosecond time scales. We present a collisional cross section model that matches our results and demonstrates how the cross sections are enhanced by dense-plasma effects including continuum lowering. Nonlocal thermodynamic equilibrium collisional radiative simulations show excellent agreement with the experimental results and provide new insight on collisional ionization and three-body-recombination processes in the dense-plasma regime.Entities:
Year: 2018 PMID: 29481207 DOI: 10.1103/PhysRevLett.120.055002
Source DB: PubMed Journal: Phys Rev Lett ISSN: 0031-9007 Impact factor: 9.161