arXiv · 1407.6979
Optimisation of the pointing stability of laser-wakefield accelerated electron beams
Abstract
Laser-wakefield acceleration is a promising technique for the next generation of ultra-compact, high-energy particle accelerators. However, for a meaningful use of laser-driven particle beams it is necessary that they present a high degree of pointing stability in order to be injected into transport lines and further acceleration stages. Here we show a comprehensive experimental study of the main factors limiting the pointing stability of laser-wakefield accelerated electron beams. It is shown that gas-cells provide a much more stable electron generation axis, if compared to gas-jet targets, virtually regardless of the gas density used. A sub-mrad shot-to-shot fluctuation in pointing is measured and a consistent non-zero offset of the electron axis in respect to the laser propagation axis is found to be solely related to a residual angular dispersion introduced by the laser compression system and can be used as a precise diagnostic tool for compression oprtimisation in chirped pulse amplified lasers.
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R. J. Garland, K. Poder, J. Cole, W. Schumaker, D. Doria, L. A. Gizzi, G. Grittani, K. Krushelnick, S. Kuschel, S. P. D. Mangles, Z. Najmudin, D. Symes, A. G. R. Thomas, M. Vargas, M. Zepf, G. Sarri. 2014-07-25. Optimisation of the pointing stability of laser-wakefield accelerated electron beams. https://arxiv.org/abs/1407.6979
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