Double-pulse speckle contrast correlations with near Fourier transform limited free-electron laser light using hard X-ray split-and-delay

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作者
Wojciech Roseker
Sooheyong Lee
Michael Walther
Felix Lehmkühler
Birgit Hankiewicz
Rustam Rysov
Stephan O. Hruszkewycz
G. Brian Stephenson
Mark Sutton
Paul H. Fuoss
Marcin Sikorski
Aymeric Robert
Sanghoon Song
Gerhard Grübel
机构
[1] Deutsches Elektronen-Synchrotron DESY,Frontier in Extreme Physics
[2] Korea Research Institute of Standards and Science,Department of Nanoscience
[3] University of Science and Technology,Department of Physics
[4] The Hamburg Centre for Ultrafast Imaging,Institute of Physical Chemistry
[5] Materials Science Division,undefined
[6] Argonne National Laboratory,undefined
[7] McGill University,undefined
[8] Linac Coherent Light Source,undefined
[9] SLAC National Accelerator Laboratory,undefined
[10] University of Hamburg,undefined
[11] European X-Ray Free-Electron Laser Facility,undefined
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摘要
The ability to deliver two coherent X-ray pulses with precise time-delays ranging from a few femtoseconds to nanoseconds enables critical capabilities of probing ultra-fast phenomena in condensed matter systems at X-ray free electron laser (FEL) sources. Recent progress made in the hard X-ray split-and-delay optics developments now brings a very promising prospect for resolving atomic-scale motions that were not accessible by previous time-resolved techniques. Here, we report on characterizing the spatial and temporal coherence properties of the hard X-ray FEL beam after propagating through split-and-delay optics. Speckle contrast analysis of small-angle scattering measurements from nanoparticles reveals well-preserved transverse coherence of the beam. Measuring intensity fluctuations from successive X-ray pulses also reveals that only single or double temporal modes remain in the transmitted beam, corresponding to nearly Fourier transform limited pulses.
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