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Gibbon, P. (2005). Short pulse laser interactions with matter. An introduction. London: Imperial College Press.
Haberberger, D. et al. (2012). Collisionless shocks in laser-produced plasma generate monoenergetic. Nature Physics 8(1), pp.95–99. London: Macmillan Publishers Limited.
Haseroth, H. et al. (1996). Laser Ion Source Development for Heavy Ions. In Proceedings
of the XVIII International linear Accelerator Conference Linac96, v.2, WE202. pp.570–
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Haussecker, E. and Chao, A.W. (2011). The Influence of Accelerator Science on Physics Research. Physics in Perspective (PIP). 13(2), pp.146–160. Bristol, Philadelphia, Beijing,
Tokyo: IOP Publishing Ltd.
Herr, W. (2013). New Tools for Non Linear Dynamics I, II. In The CERN Accelerator School
2013, Trondheim, Norway. Geneva, Switzerland: CERN, European Organization for
Nuclear Research.
Hidding, B.B. et al. (2012). Beyond injection : Trojan horse underdense photocathode plasma
wakefield acceleration. In Advanced Accelerator Concepts. AIP Conference Proceedings.,
pp.570–575. Melville, NY: AIP.
Hooker, S. et al. (2014). Multi-Pulse Laser Wakefield Acceleration: A New Route to Efficient,
High-Repetition-Rate Plasma Accelerators and High Flux Radiation Sources. J. Phys. B 47,
(234003). Bristol, Philadelphia, Beijing, Tokyo: IOP Publishing Ltd.
Hooker, S. and Webb, C. (2010). Lasers physics (Oxford Master Series in Physics). New York:
Oxford University Press Inc.
Huang, Zh. and Ruth, R.D. (1998). Laser-electron storage ring. Phys. Rev. Lett. 80, pp.976–
979. Ridge, NY: American Physical Society.
Jackson, J. (1999). Classical Electrodynamics (third ed.). Hoboken, NJ: John Wiley & Sons,
Ltd.
Jaroszynski, D. et al. (2009). Laser-Plasma Interactions. Boca Raton, FL: CRC Press, Taylor
Francis Group.
Kneip, S. et al. (2011). X-ray phase contrast imaging of biological specimens with femtosecond.
Applied Physics Letters 99. Melville, NY: AIP Publishing LLC.
Landau, L. (1946). On the vibration of the electronic plasma. JETP (16), p.574. Russia:
International Academic Publishing Company (IAPC) “Nauka/Interperiodica”.
Lee, S. (2012). Accelerator Physics (third ed.). New Jersey, London, Singapore, Beijing,
Shanghai, Hong Kong, Taipei, Chennai: World Scientific Publishing Co. Pte. Ltd.
Leemans, W. et al. (2006). GeV electron beams from a centimetre-scale accelerator. Nature
Physics 2, pp.696–699. London: Macmillan Publishers Limited.
Leemans, W. et al. (2014). Multi-GeV Electron Beams from Capillary-Discharge-Guided Subpetawatt Laser Pulses in the Self-Trapping Regime. Phys. Rev. Lett. 113, (245002). Ridge,
NY: American Physical Society.
