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  4. High-flux ultrafast extreme-ultraviolet photoemission spectroscopy at 18.4 MHz pulse repetition rate
 
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2019
Journal Article
Title

High-flux ultrafast extreme-ultraviolet photoemission spectroscopy at 18.4 MHz pulse repetition rate

Abstract
Laser-dressed photoelectron spectroscopy, employing extreme-ultraviolet attosecond pulses obtained by femtosecond-laser-driven high-order harmonic generation, grants access to atomic-scale electron dynamics. Limited by space charge effects determining the admissible number of photoelectrons ejected during each laser pulse, multidimensional (i.e. spatially or angle-resolved) attosecond photoelectron spectroscopy of solids and nanostructures requires high-photon-energy, broadband high harmonic sources operating at high repetition rates. Here, we present a high-conversion-efficiency, 18.4-MHz-repetition-rate cavity-enhanced high harmonic source emitting 5 × 105 photons per pulse in the 25-to-60-eV range, releasing 1 × 1010 photoelectrons per second from a 10-µm-diameter spot on tungsten, at space charge distortions of only a few tens of meV. Broadband, time-of-flight photoelectron detection with nearly 100% temporal duty cycle evidences a count rate improvement between two and three orders of magnitude over state-of-the-art attosecond photoelectron spectroscopy experiments under identical space charge conditions. The measurement time reduction and the photon energy scalability render this technology viable for next-generation, high-repetition-rate, multidimensional attosecond metrology.
Author(s)
Saule, T.
Heinrich, S.
Schötz, J.
Lilienfein, N.
Högner, M.
Vries, O. de
Plötner, M.
Weitenberg, J.
Esser, D.
Schulte, J.
Russbueldt, P.
Limpert, J.
Kling, M.F.
Kleineberg, U.
Pupeza, T.
Journal
Nature Communications  
Open Access
DOI
10.1038/s41467-019-08367-y
Additional link
Full text
Language
English
Fraunhofer-Institut für Lasertechnik ILT  
Fraunhofer-Institut für Angewandte Optik und Feinmechanik IOF  
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