| Literature DB >> 27768378 |
Daniela Rupp1, Leonie Flückiger1,2, Marcus Adolph1, Tais Gorkhover1,3, Maria Krikunova1, Jan Philippe Müller1, Maria Müller1, Tim Oelze1, Yevheniy Ovcharenko1, Benjamin Röben1, Mario Sauppe1, Sebastian Schorb1,3, David Wolter1, Rolf Mitzner4, Michael Wöstmann5, Sebastian Roling5, Marion Harmand6, Rolf Treusch6, Mathias Arbeiter7, Thomas Fennel7, Christoph Bostedt3,8,9, Thomas Möller1.
Abstract
We studied the nanoplasma formation and explosion dynamics of single large xenon clusters in ultrashort, intense x-ray free-electron laser pulses via ion spectroscopy. The simultaneous measurement of single-shot diffraction images enabled a single-cluster analysis that is free from any averaging over the cluster size and laser intensity distributions. The measured charge state-resolved ion energy spectra show narrow distributions with peak positions that scale linearly with final ion charge state. These two distinct signatures are attributed to highly efficient recombination that eventually leads to the dominant formation of neutral atoms in the cluster. The measured mean ion energies exceed the value expected without recombination by more than an order of magnitude, indicating that the energy release resulting from electron-ion recombination constitutes a previously unnoticed nanoplasma heating process. This conclusion is supported by results from semiclassical molecular dynamics simulations.Entities:
Year: 2016 PMID: 27768378 DOI: 10.1103/PhysRevLett.117.153401
Source DB: PubMed Journal: Phys Rev Lett ISSN: 0031-9007 Impact factor: 9.161