Published July 1, 2010 | Version v1
Journal article

Femtosecond electronic response of atoms to ultra-intense x-rays

Description

An era of exploring the interactions of high-intensity, hard X-rays with matter has begun with the start-up of a hard-X-ray free-electron laser, the Linac Coherent Light Source (LCLS). Understanding how electrons in matter respond to ultra-intense X-ray radiation is essential for all applications. Here we reveal the nature of the electronic response in a free atom to unprecedented high-intensity, short-wavelength, high-fluence radiation (respectively 1018 W cm-2, 1.5-0.6 nm, ∼105 X-ray photons per (angstrom)2). At this fluence, the neon target inevitably changes during the course of a single femtosecond-duration X-ray pulse - by sequentially ejecting electrons - to produce fully-stripped neon through absorption of six photons. Rapid photoejection of inner-shell electrons produces 'hollow' atoms and an intensity-induced X-ray transparency. Such transparency, due to the presence of inner-shell vacancies, can be induced in all atomic, molecular and condensed matter systems at high intensity. Quantitative comparison with theory allows us to extract LCLS fluence and pulse duration. Our successful modelling of X-ray/atom interactions using a straightforward rate equation approach augurs favourably for extension to complex systems.

Additional details

Identifiers

Publishing Information

Journal Title
Nature (Basingstoke, Online)
Journal Volume
466
Journal Page Range
p. 56-61
ISSN
1476-4687

Optional Information

Contract/Grant/Project number
AC02-06CH11357
Notes
doi 10.1038/nature09177
Funding organization
USDOE Office of Science (United States); Feoder Lynen Fellowship (United States)
Secondary number(s)
ANL/XSD/JA--66940