English

From ultracold electrons to coherent soft X-rays

Accelerator Physics 2019-05-13 v1 Atomic Physics

Abstract

Electromagnetic radiation in the soft x-ray spectral range (1100 nm1-100~\rm{nm} wavelengths or 0.011 keV0.01-1~\rm{keV} photon energies) is rapidly gaining importance in both fundamental research and industrial applications. At present the degree of coherence and the average photon flux required by advanced applications is only available at large-scale synchrotron facilities and Free Electron Lasers (FELs), severely limiting the range of applications. We propose a fully coherent soft x-ray source, based on Inverse Compton Scattering (ICS) of electron bunches created by photoionization of a laser-cooled and trapped atomic gas. By combining spatial modulation of the photoionization process with radiofrequency bunch compression techniques, micro-bunching at soft x-ray wavelengths and thus coherent amplification can be realised, resulting in a soft x-ray table-top Compton light source.

Keywords

Cite

@article{arxiv.1905.04031,
  title  = {From ultracold electrons to coherent soft X-rays},
  author = {J. G. H. Franssen and B. H. Schaap and T. C. H. de Raadt and D. F. J. Nijhof and P. H. A. Mutsears and O. J. Luiten},
  journal= {arXiv preprint arXiv:1905.04031},
  year   = {2019}
}
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