Probing ultrafast foam homogenization with grating-based X-ray dark-field imaging

L Leonard Wegert C Constantin Rauch S Stephan Schreiner M Markus Schneider T Thilo Michel G Gisela Anton B Bruno Albertazzi M Michel Koenig P Pascal Meyer E Erik Fröjdh A Aldo Mozzanica Y Yang Yang J Johannes Hornung B Bernhard Zielbauer A Artem S. Martynenko S Sébastien LePape S Stefan Funk P Paul Neumayer

Abstract

Abstract Microstructured foams are emerging as a promising class of targets, with applications ranging from laser-driven particle acceleration to inertial confinement fusion. To unlock their full potential, a deeper understanding of their properties, especially the changes and behavior of the microstructure under extreme conditions, is required. While recently advancing 3D printed foam targets can be observed by X-ray radiography, the microstructure in chemically produced targets is far below the spatial resolution of conventional radiography. To overcome this limitation, we apply grating-based X-ray dark-field imaging to observe structural changes in foams that are rapidly heated by laser-accelerated proton pulses. The experimental data is compared to synthetic dark-field values obtained from hydrodynamic simulations of a simplified foam model. Both experimental and simulation results demonstrate the viability of utilizing grating-based dark-field imaging for observing microstructural changes in foam targets.

Article Details

Volume / Issue Vol. 15, Issue 1
Published November 26, 2025
ISSN 2045-2322
Publisher Nature Portfolio

Journal Info

Scientific Reports

Nature Portfolio

ISSN: 2045-2322 Open Access Life Sciences

Authors (18)

L

Leonard Wegert

C

Constantin Rauch

S

Stephan Schreiner

M

Markus Schneider

T

Thilo Michel

G

Gisela Anton

B

Bruno Albertazzi

M

Michel Koenig

P

Pascal Meyer

E

Erik Fröjdh

A

Aldo Mozzanica

Y

Yang Yang

J

Johannes Hornung

B

Bernhard Zielbauer

A

Artem S. Martynenko

S

Sébastien LePape

S

Stefan Funk

P

Paul Neumayer