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Imaging plasma formation in isolated nanoparticles with ultrafast resonant scattering.

Daniela RuppLeonie FlückigerMarcus AdolphAlessandro ColomboTais GorkhoverMarion HarmandMaria KrikunovaJan Philippe MüllerTim OelzeYevheniy OvcharenkoMaria RichterMario SauppeSebastian SchorbRolf TreuschDavid WolterChristoph BostedtThomas Möller
Published in: Structural dynamics (Melville, N.Y.) (2020)
We have recorded the diffraction patterns from individual xenon clusters irradiated with intense extreme ultraviolet pulses to investigate the influence of light-induced electronic changes on the scattering response. The clusters were irradiated with short wavelength pulses in the wavelength regime of different 4d inner-shell resonances of neutral and ionic xenon, resulting in distinctly different optical properties from areas in the clusters with lower or higher charge states. The data show the emergence of a transient structure with a spatial extension of tens of nanometers within the otherwise homogeneous sample. Simulations indicate that ionization and nanoplasma formation result in a light-induced outer shell in the cluster with a strongly altered refractive index. The presented resonant scattering approach enables imaging of ultrafast electron dynamics on their natural timescale.
Keyphrases
  • energy transfer
  • high resolution
  • monte carlo
  • big data
  • molecular dynamics
  • electron transfer
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