Measuring the frequency chirp of extreme-ultraviolet free-electron laser pulses by transient absorption spectroscopy

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作者
Thomas Ding
Marc Rebholz
Lennart Aufleger
Maximilian Hartmann
Veit Stooß
Alexander Magunia
Paul Birk
Gergana Dimitrova Borisova
David Wachs
Carina da Costa Castanheira
Patrick Rupprecht
Yonghao Mi
Andrew R. Attar
Thomas Gaumnitz
Zhi-Heng Loh
Sebastian Roling
Marco Butz
Helmut Zacharias
Stefan Düsterer
Rolf Treusch
Arvid Eislage
Stefano M. Cavaletto
Christian Ott
Thomas Pfeifer
机构
[1] Max-Planck-Institut für Kernphysik,Department of Chemistry
[2] University of California,Division of Chemistry and Biological Chemistry, and Division of Physics and Applied Physics, School of Physical and Mathematical Sciences
[3] Laboratorium für Physikalische Chemie,Physikalisches Institut
[4] ETH Zürich,undefined
[5] Nanyang Technological University,undefined
[6] Westfälische Wilhelms-Universität Münster,undefined
[7] Deutsches Elektronen-Synchrotron DESY,undefined
来源
Nature Communications | / 12卷
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摘要
High-intensity ultrashort pulses at extreme ultraviolet (XUV) and x-ray photon energies, delivered by state-of-the-art free-electron lasers (FELs), are revolutionizing the field of ultrafast spectroscopy. For crossing the next frontiers of research, precise, reliable and practical photonic tools for the spectro-temporal characterization of the pulses are becoming steadily more important. Here, we experimentally demonstrate a technique for the direct measurement of the frequency chirp of extreme-ultraviolet free-electron laser pulses based on fundamental nonlinear optics. It is implemented in XUV-only pump-probe transient-absorption geometry and provides in-situ information on the time-energy structure of FEL pulses. Using a rate-equation model for the time-dependent absorbance changes of an ionized neon target, we show how the frequency chirp can be directly extracted and quantified from measured data. Since the method does not rely on an additional external field, we expect a widespread implementation at FELs benefiting multiple science fields by in-situ on-target measurement and optimization of FEL-pulse properties.
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