An atomic-scale investigation of structural transitions in ruthenium induced by x-ray free-electron lasers

X Xue Hai (Shanghai Institute of Applied Physics, Chinese Academy of Sciences 1 , Shanghai 201800,) Y Ya-Ru Yin (Center for Transformative Science, ShanghaiTech University 3 , Shanghai 201210,) Y Ya-Jun Tong (Center for Transformative Science, ShanghaiTech University 3 , Shanghai 201210,) X Xiao-feng Zhang H Han Wang F Fei-Fei Zhang A A-Li Wen (Shanghai Institute of Applied Physics, Chinese Academy of Sciences 1 , Shanghai 201800,) C Cui-Lan Ren (Shanghai Institute of Applied Physics, Chinese Academy of Sciences 1 , Shanghai 201800,) P Ping Huai (Center for Transformative Science)

Abstract

The surface thermodynamic properties of ruthenium (Ru) targets were systematically investigated under different laser energy fluences to elucidate the irradiation damage mechanisms of the grazing incidence mirror in x-ray free-electron laser (XFEL) facilities, by combining the two-temperature model and molecular dynamics method. Initially, the 50 nm Ru thin film was irradiated by a 20 fs laser pulse at an absorbed laser fluence of 40 mJ cm−2, and surface dynamic processes with rapid heating and homogeneous melting lasting picosecond-timescale were observed. However, the ultra-short laser-induced surface dynamic responses in 600 nm Ru thick film were lasting much longer time. With the increasing energy fluence of the laser pulse, the intensified irradiation effects characterized by the surface morphology changes were observed, followed by homogeneous melting of the Ru thick film. As the laser fluence approaches the damage threshold, an unconventional ablation effect was observed in the irradiated thick film, featuring the formation of point defects, voids, and subsequent nanometer-scale splitting in the front surface (approximately 5 nm). It indicates that, at laser fluences ranging from 20 to 320 mJ cm−2, the surface morphology undergoes expansion at angstrom to nanometer scales, accompanied by nanoscale splitting. The results provide valuable insights into the irradiation damage mechanism of the high-Z coating materials for x-ray optics in XFELs.

Article Details

Volume / Issue Vol. 137, Issue 20
Published May 28, 2025
ISSN 0021-8979
Publisher American Institute of Physics

Journal Info

Journal of Applied Physics

American Institute of Physics

ISSN: 0021-8979 Physical Sciences

Authors (9)

X

Xue Hai

Shanghai Institute of Applied Physics, Chinese Academy of Sciences 1 , Shanghai 201800,

Y

Ya-Ru Yin

Center for Transformative Science, ShanghaiTech University 3 , Shanghai 201210,

Y

Ya-Jun Tong

Center for Transformative Science, ShanghaiTech University 3 , Shanghai 201210,

X

Xiao-feng Zhang

H

Han Wang

F

Fei-Fei Zhang

A

A-Li Wen

Shanghai Institute of Applied Physics, Chinese Academy of Sciences 1 , Shanghai 201800,

C

Cui-Lan Ren

Shanghai Institute of Applied Physics, Chinese Academy of Sciences 1 , Shanghai 201800,

P

Ping Huai

Center for Transformative Science