Laser-driven resonant soft-X-ray scattering for probing picosecond dynamics of nanometre-scale order

Fuente: arXiv
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Autori principali: Lunin, Leonid, Borchert, Martin, Schneider, Niklas, Korell, Konstanze, Schneider, Michael, Engel, Dieter, Eisebitt, Stefan, Pfau, Bastian, Schick, Daniel
Natura: Preprint
Pubblicazione: 2025
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author Lunin, Leonid
Borchert, Martin
Schneider, Niklas
Korell, Konstanze
Schneider, Michael
Engel, Dieter
Eisebitt, Stefan
Pfau, Bastian
Schick, Daniel
author_facet Lunin, Leonid
Borchert, Martin
Schneider, Niklas
Korell, Konstanze
Schneider, Michael
Engel, Dieter
Eisebitt, Stefan
Pfau, Bastian
Schick, Daniel
contents X-ray scattering has been an indispensable tool in advancing our understanding of matter, from the first evidence of the crystal lattice to recent discoveries of nuclei's fastest dynamics. In addition to the lattice, ultrafast resonant elastic scattering of soft X-rays provides a sensitive probe of charge, spin, and orbital order with unparalleled nanometre spatial and femto- to picosecond temporal resolution. However, the full potential of this technique remains largely unexploited due to its high demand on the X-ray source. Only a selected number of instruments at large-scale facilities can deliver the required short-pulsed and wavelength-tunable radiation, rendering laboratory-scale experiments elusive so far. Here, we demonstrate time-resolved X-ray scattering with spectroscopic contrast at a laboratory-based instrument using the soft-X-ray radiation emitted from a laser-driven plasma source. Specifically, we investigate the photo-induced response of magnetic domains emerging in a ferrimagnetic heterostructure with 9$\,$ps temporal resolution. The achieved sensitivity allows for tracking the reorganisation of the domain network on pico- to nanosecond time scales in great detail. This instrumental development and experimental demonstration break new ground for studying material dynamics in a wide range of laterally ordered systems in a flexible laboratory environment.
format Preprint
id arxiv_https___arxiv_org_abs_2501_11506
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Laser-driven resonant soft-X-ray scattering for probing picosecond dynamics of nanometre-scale order
Lunin, Leonid
Borchert, Martin
Schneider, Niklas
Korell, Konstanze
Schneider, Michael
Engel, Dieter
Eisebitt, Stefan
Pfau, Bastian
Schick, Daniel
Mesoscale and Nanoscale Physics
X-ray scattering has been an indispensable tool in advancing our understanding of matter, from the first evidence of the crystal lattice to recent discoveries of nuclei's fastest dynamics. In addition to the lattice, ultrafast resonant elastic scattering of soft X-rays provides a sensitive probe of charge, spin, and orbital order with unparalleled nanometre spatial and femto- to picosecond temporal resolution. However, the full potential of this technique remains largely unexploited due to its high demand on the X-ray source. Only a selected number of instruments at large-scale facilities can deliver the required short-pulsed and wavelength-tunable radiation, rendering laboratory-scale experiments elusive so far. Here, we demonstrate time-resolved X-ray scattering with spectroscopic contrast at a laboratory-based instrument using the soft-X-ray radiation emitted from a laser-driven plasma source. Specifically, we investigate the photo-induced response of magnetic domains emerging in a ferrimagnetic heterostructure with 9$\,$ps temporal resolution. The achieved sensitivity allows for tracking the reorganisation of the domain network on pico- to nanosecond time scales in great detail. This instrumental development and experimental demonstration break new ground for studying material dynamics in a wide range of laterally ordered systems in a flexible laboratory environment.
title Laser-driven resonant soft-X-ray scattering for probing picosecond dynamics of nanometre-scale order
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2501.11506