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Clocking Auger electrons

  • D. C. Haynes
  • , M. Wurzer
  • , A. Schletter
  • , A. Al-Haddad
  • , C. Blaga
  • , C. Bostedt
  • , J. Bozek
  • , H. Bromberger
  • , M. Bucher
  • , A. Camper
  • , S. Carron
  • , R. Coffee
  • , J. T. Costello
  • , L. F. DiMauro
  • , Y. Ding
  • , K. Ferguson
  • , I. Grguraš
  • , W. Helml
  • , M. C. Hoffmann
  • , M. Ilchen
  • S. Jalas, N. M. Kabachnik, A. K. Kazansky, R. Kienberger, A. R. Maier, T. Maxwell, T. Mazza, M. Meyer, H. Park, J. Robinson, C. Roedig, H. Schlarb, R. Singla, F. Tellkamp, P. A. Walker, K. Zhang, G. Doumy, C. Behrens, A. L. Cavalieri
  • Max-Planck Institute for the Structure and Dynamics of Matter
  • Center for Free-Electron Laser Science
  • Universität Hamburg
  • Technische Universität München
  • Paul Scherrer Institut
  • Argonne National Laboratory
  • Ohio State University
  • Kansas State University
  • École Polytechnique Fédérale de Lausanne (EPFL)
  • L'Orme des Merisiers
  • Deutsches Elektronen-Synchrotron (DESY)
  • Stanford University
  • Dublin City University
  • pro3dure medical GmbH
  • European XFEL GmbH
  • Information Systems
  • Moscow State University
  • Biodonostia Health Research Institute-CIBERNED-UPV-EHU
  • Material Physics Center CSIC-UPV/EHU; Donostia International Physics Center DIPC
  • Basque Foundation for Science
  • University of Bern

Publikation: Beitrag in FachzeitschriftArtikelBegutachtung

38 Zitate (Scopus)

Abstract

Intense X-ray free-electron lasers (XFELs) can rapidly excite matter, leaving it in inherently unstable states that decay on femtosecond timescales. The relaxation occurs primarily via Auger emission, so excited-state observations are constrained by Auger decay. In situ measurement of this process is therefore crucial, yet it has thus far remained elusive in XFELs owing to inherent timing and phase jitter, which can be orders of magnitude larger than the timescale of Auger decay. Here we develop an approach termed ‘self-referenced attosecond streaking’ that provides subfemtosecond resolution in spite of jitter, enabling time-domain measurement of the delay between photoemission and Auger emission in atomic neon excited by intense, femtosecond pulses from an XFEL. Using a fully quantum-mechanical description that treats the ionization, core-hole formation and Auger emission as a single process, the observed delay yields an Auger decay lifetime of 2.2−0.3+0.2 fs for the KLL decay channel.

OriginalspracheEnglisch
Seiten (von - bis)512-518
Seitenumfang7
FachzeitschriftNature Physics
Jahrgang17
Ausgabenummer4
DOIs
PublikationsstatusVeröffentlicht - Apr. 2021

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