beam dynamics analysis of dielectric laser acceleration using a fast 6d tracking scheme

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ID: 154487
2017
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Abstract
A six-dimensional symplectic tracking approach exploiting the periodicity properties of dielectric laser acceleration (DLA) gratings is presented. The longitudinal kick is obtained from the spatial Fourier harmonics of the laser field within the structure, and the transverse kicks are obtained using the Panofsky-Wenzel theorem. Additionally to the usual, strictly longitudinally periodic gratings, our approach is also applicable to periodicity chirped (subrelativistic) and tilted (deflection) gratings. In the limit of small kicks and short periods we obtain the 6D Hamiltonian, which allows, for example, to obtain matched beam distributions in DLAs. The scheme is applied to beam and grating parameters similar to recently performed experiments. The paper concludes with an outlook to laser based focusing schemes, which are promising to overcome fundamental interaction length limitations, in order to build an entire microchip-sized laser driven accelerator.
Reference Key
niedermayer2017physicalbeam Use this key to autocite in the manuscript while using SciMatic Manuscript Manager or Thesis Manager
Authors ;Uwe Niedermayer;Thilo Egenolf;Oliver Boine-Frankenheim
Journal wireless personal communications
Year 2017
DOI
10.1103/PhysRevAccelBeams.20.111302
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