Scientific Reports (Jun 2023)

Frequency-domain interferometry for the determination of time delay between two extreme-ultraviolet wave packets generated by a tandem undulator

  • Y. Hikosaka,
  • T. Kaneyasu,
  • S. Wada,
  • H. Kohguchi,
  • H. Ota,
  • E. Nakamura,
  • H. Iwayama,
  • M. Fujimoto,
  • M. Hosaka,
  • M. Katoh

DOI
https://doi.org/10.1038/s41598-023-37449-7
Journal volume & issue
Vol. 13, no. 1
pp. 1 – 8

Abstract

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Abstract Synchrotron radiation, emitted by relativistic electrons traveling in a magnetic field, has poor temporal coherence. However, recent research has proved that time-domain interferometry experiments, which were thought to be enabled by only lasers of excellent temporal coherence, can be implemented with synchrotron radiation using a tandem undulator. The radiation generated by the tandem undulator comprises pairs of light wave packets, and the longitudinal coherence within a light wave packet pair is used to achieve time-domain interferometry. The time delay between two light wave packets, formed by a chicane for the electron trajectory, can be adjusted in the femtosecond range by a standard synchrotron technology. In this study, we show that frequency-domain spectra of the tandem undulator radiation exhibit fringe structures from which the time delay between a light wave packet pair can be determined with accuracy on the order of attoseconds. The feasibility and limitations of the frequency-domain interferometric determination of the time delay are examined.