250 unifying physics of accelerators, lasers and plasma
Macchi, A. et al. (2013). Ion acceleration by superintense laser-plasma interaction. Rev. Mod.
Phys. 85, pp.751–793. Ridge, NY: American Physical Society.
Maksimchuk, A. et al. (2000). Forward Ion Acceleration in Thin Films Driven by a HighIntensity Laser. Phys. Rev. Lett. 84(18), pp.4108–4111. Ridge, NY: American Physical
Society.
Mangles, S. et al. (2004). Monoenergetic beams of relativistic electrons from intense laserplasma interactions. Nature 431, pp.535–538. London: Macmillan Publishers Limited.
Mendonca, J. (2001). Theory of Photon Acceleration. Bristol, Philadelphia, Beijing, Tokyo:
IOP Publishing Ltd.
Mourou, G. et al. (2013). The future is fibre accelerators. Nature Photonics (7), pp.258–261.
London: Macmillan Publishers Limited.
Najmudin, Z. (2014). Laser Driven Systems. In The CERN Accelerator School 2014,
Geneva, Switzerland. Geneva, Switzerland: CERN, European Organization for Nuclear
Research.
Palmer, C.A. et al. (2011). Monoenergetic Proton Beams Accelerated by a Radiation Pressure
Driven . Phys. Rev. Lett. 106(1, 014801). Ridge, NY: American Physical Society.
Palmer, R.B. (1988). Energy Scaling, Crab Crossing and the Pair Problem. SLAC-PUB-4707.
Menlo Park, CA: SLAC–PUB.
Parker, B. et al. (2007). The Superconducting Magnets of the ILC Beam Delivery System.
SLAC-PUB-12832. Menlo Park, CA: SLAC–PUB.
Pashkin, A. and Leitenstorfer, A. (2014). Particle physics in a superconductor. Science 345(6201), pp.1121–1122. Washington, DC: American Association for the Advancement of Science.
Pozimski, J. and Aslaninejad, M. (2013). Gabor lenses for capture and energy selection of laser
driven ion beams in cancer treatment. Laser and Particle Beams 31, pp.723–733. New
York: Cambridge University Press Inc.
Qiao, B. et al. (2009). Stable GeV Ion-Beam Acceleration from Thin Foils by Circularly Polarized Laser Pulses. Phys. Rev. Lett. 102(14, 145002). Ridge, NY: American Physical
Society.
Qiao, B. et al. (2010). Radiation-Pressure Acceleration of Ion Beams from Nanofoil Targets: The
Leaky Light-Sail Regime. Phys. Rev. Lett. 105(15, 155002). Ridge, NY: American Physical
Society.
Radovinsky, A. et al. (2013). Variable Energy Acceleration in a Single Iron-Free Synchrocyclotron. In Variable Energy Acceleration in a Single Iron-Free Synchrocyclotron. Cambridge, MA: Plasma Science and Fusion Center Massachusetts Institute of Technology
PSFC/RR-13-9.
Raimondi, P. et al. (2008). Suppression of beam-beam resonances in crab waist collisions. In
Proceedings of EPAC08, Genoa, Italy, pp.2620–2622. Proceedings of EPAC08.
Raimondi, P. and Seryi, A. (2001). Novel Final Focus Design for Future Linear Colliders. Phys.
Rev. Lett. 86(17, 3779). Ridge, NY: American Physical Society.
Macchi, A. et al. (2013). Ion acceleration by superintense laser-plasma interaction. Rev. Mod.
Phys. 85, pp.751–793. Ridge, NY: American Physical Society.
Maksimchuk, A. et al. (2000). Forward Ion Acceleration in Thin Films Driven by a HighIntensity Laser. Phys. Rev. Lett. 84(18), pp.4108–4111. Ridge, NY: American Physical
Society.
Mangles, S. et al. (2004). Monoenergetic beams of relativistic electrons from intense laserplasma interactions. Nature 431, pp.535–538. London: Macmillan Publishers Limited.
Mendonca, J. (2001). Theory of Photon Acceleration. Bristol, Philadelphia, Beijing, Tokyo:
IOP Publishing Ltd.
Mourou, G. et al. (2013). The future is fibre accelerators. Nature Photonics (7), pp.258–261.
London: Macmillan Publishers Limited.
Najmudin, Z. (2014). Laser Driven Systems. In The CERN Accelerator School 2014,
Geneva, Switzerland. Geneva, Switzerland: CERN, European Organization for Nuclear
Research.
Palmer, C.A. et al. (2011). Monoenergetic Proton Beams Accelerated by a Radiation Pressure
Driven . Phys. Rev. Lett. 106(1, 014801). Ridge, NY: American Physical Society.
Palmer, R.B. (1988). Energy Scaling, Crab Crossing and the Pair Problem. SLAC-PUB-4707.
Menlo Park, CA: SLAC–PUB.
Parker, B. et al. (2007). The Superconducting Magnets of the ILC Beam Delivery System.
SLAC-PUB-12832. Menlo Park, CA: SLAC–PUB.
Pashkin, A. and Leitenstorfer, A. (2014). Particle physics in a superconductor. Science 345(6201), pp.1121–1122. Washington, DC: American Association for the Advancement of Science.
Pozimski, J. and Aslaninejad, M. (2013). Gabor lenses for capture and energy selection of laser
driven ion beams in cancer treatment. Laser and Particle Beams 31, pp.723–733. New
York: Cambridge University Press Inc.
Qiao, B. et al. (2009). Stable GeV Ion-Beam Acceleration from Thin Foils by Circularly Polarized Laser Pulses. Phys. Rev. Lett. 102(14, 145002). Ridge, NY: American Physical
Society.
Qiao, B. et al. (2010). Radiation-Pressure Acceleration of Ion Beams from Nanofoil Targets: The
Leaky Light-Sail Regime. Phys. Rev. Lett. 105(15, 155002). Ridge, NY: American Physical
Society.
Radovinsky, A. et al. (2013). Variable Energy Acceleration in a Single Iron-Free Synchrocyclotron. In Variable Energy Acceleration in a Single Iron-Free Synchrocyclotron. Cambridge, MA: Plasma Science and Fusion Center Massachusetts Institute of Technology
PSFC/RR-13-9.
Raimondi, P. et al. (2008). Suppression of beam-beam resonances in crab waist collisions. In
Proceedings of EPAC08, Genoa, Italy, pp.2620–2622. Proceedings of EPAC08.
Raimondi, P. and Seryi, A. (2001). Novel Final Focus Design for Future Linear Colliders. Phys.
Rev. Lett. 86(17, 3779). Ridge, NY: American Physical Society.
