4.4 Article

Full characterization of a phase-locked DUV double pulse generated in an all-reflective shaping setup working under grazing incidence in a broad spectral range

Journal

APPLIED PHYSICS B-LASERS AND OPTICS
Volume 128, Issue 1, Pages -

Publisher

SPRINGER HEIDELBERG
DOI: 10.1007/s00340-021-07722-6

Keywords

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Funding

  1. Deutsche Forschungsgemeinschaft (DFG, German Research Foundation) [170620586, KI 482/20-1, LA 1431/5-1]
  2. Federal Ministry of Education and Research of Germany (BMBF) through collaborative research project FSP 302 [05K13GU4]
  3. Innovation Pool initiative within the Helmholtz Association's research field Matter: 'Enabling Technologies for Compact High Rate Photon Sources' (ECRAPS)
  4. Federal Ministry of Education and Research of Germany (BMBF) through collaborative research project LoKoFEL [05K2016]

Ask authors/readers for more resources

Controlling the temporal and spectral properties of ultrashort laser pulses in the visible and near-infrared spectral range using a femtosecond pulse-shaping device is a powerful tool with many applications. The 4f design, known for its symmetric zero-dispersion-compressor geometry, is a major and successful concept. An all-reflective shaping setup is used in this study to generate a phase-locked 266 nm double pulse, with time-frequency spectra in good agreement with optical simulations.
Controlling the temporal and spectral properties of ultrashort laser pulses in the visible and near-infrared spectral range by means of a femtosecond pulse-shaping device is a powerful tool with many applications in ultrafast spectroscopy. A major and successful concept is known as the 4f design, which has a symmetric zero-dispersion-compressor geometry. Most 4f pulse shapers rely on using transmissive optics in their beam path limiting the operational wavelength ranges. In the present contribution, we use an all-reflective shaping setup to generate a phase-locked 266 nm double pulse to benchmark its performance in the limit of short wavelengths. The setup comprises the complete spectral amplitude and phase diagnostics for quantitative analysis of the pulse properties before and after the shaper using the technique of frequency-resolved optical gating. The measured time-frequency spectra are in good agreement with optical simulations. The geometry and hardware of the device including the optical components are designed, such that all harmonics of the deep UV pulses travel the same path, giving the instrument the ability to work with soft X-ray pulses, under vacuum conditions, down to the few-nanometer wavelength scale.

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