4.6 Article

Acceleration of sub-relativistic electrons with an evanescent optical wave at a planar interface

Journal

OPTICS EXPRESS
Volume 25, Issue 16, Pages 19195-19204

Publisher

OPTICAL SOC AMER
DOI: 10.1364/OE.25.019195

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Funding

  1. Gordon and Betty Moore Foundation (Accelerator on a Chip International Program - ACHIP) [GBMF4744]
  2. European Research Council
  3. Bundesministerium fur Bildung und Forschung [05K16WEC]

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We report on a theoretical and experimental study of the energy transfer between an optical evanescent wave, propagating in vacuum along the planar boundary of a dielectric material, and a beam of sub-relativistic electrons. The evanescent wave is excited via total internal reflection in the dielectric by an infrared (lambda = 2 mu m) femtosecond laser pulse. By matching the electron propagation velocity to the phase velocity of the evanescent wave, energy modulation of the electron beam is achieved. A maximum energy gain of 800 eV is observed, corresponding to the absorption of more than 1000 photons by one electron. The maximum observed acceleration gradient is 19 +/- 2 MeV/m. The striking advantage of this scheme is that a structuring of the acceleration element's surface is not required, enabling the use of materials with high laser damage thresholds that are difficult to nano-structure, such as SiC, Al2O3 or CaF2. (C) 2017 Optical Society of America

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