Fundamentals and Applications of Hybrid LWFA-PWFA
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Ulrich Schramm | Arie Irman | Bernhard Hidding | Thomas Heinemann | Stefan Karsch | Paul Scherkl | Grace Gloria Manahan | Daniel Ullmann | Alexander Knetsch | T. Heinemann | S. Karsch | S. Corde | A. Martinez de la Ossa | B. Hidding | A. Irman | U. Schramm | Andrew Beaton | G. Manahan | A. Knetsch | Lewis Boulton | Sebastién Corde | Andreas Doepp | Fahim Ahmad Habib | Gavin Kirwan | Alberto Martinez de la Ossa | Alastair Nutter | L. Boulton | P. Scherkl | A. Beaton | D. Ullmann | A. Nutter | G. Kirwan | Fahim Habib | A. Doepp
[1] David L. Bruhwiler,et al. Electron beam manipulation, injection and acceleration in plasma wakefield accelerators by optically generated plasma density spikes , 2016 .
[2] J. Meyer-ter-Vehn,et al. Collective Deceleration: Toward a Compact Beam Dump , 2009, 0909.1530.
[3] David L. Bruhwiler,et al. Optical plasma torch electron bunch generation in plasma wakefield accelerators , 2015 .
[4] Wei Lu,et al. OSIRIS: A Three-Dimensional, Fully Relativistic Particle in Cell Code for Modeling Plasma Based Accelerators , 2002, International Conference on Computational Science.
[5] W. Mori,et al. Transverse emittance and current of multi-GeV trapped electrons in a plasma wakefield accelerator , 2009 .
[6] S. Corde,et al. Direct Observation of Plasma Waves and Dynamics Induced by Laser-Accelerated Electron Beams , 2018, Physical Review X.
[7] J. Rosenzweig,et al. Hybrid modeling of relativistic underdense plasma photocathode injectors , 2013 .
[8] A. Huebl,et al. Demonstration of a beam loaded nanocoulomb-class laser wakefield accelerator , 2017, Nature Communications.
[9] A. Novokhatsky,et al. VLEPP: TRANSVERSE BEAM DYNAMICS , 1983 .
[10] J. Lee,et al. Self-mode-transition from laser wakefield accelerator to plasma wakefield accelerator of laser-driven plasma-based electron acceleration , 2010 .
[11] J. Vieira,et al. Beam loading in the nonlinear regime of plasma-based acceleration. , 2008, Physical review letters.
[12] Michael Litos,et al. Hot spots and dark current in advanced plasma wakefield accelerators , 2016 .
[13] Stepan Bulanov,et al. Thermal emittance from ionization-induced trapping in plasma accelerators , 2014 .
[14] O Willi,et al. Monoenergetic energy doubling in a hybrid laser-plasma wakefield accelerator. , 2010, Physical review letters.
[15] W. A. Gillespie,et al. High quality electron beams from a laser wakefield accelerator , 2010, CLEO/QELS: 2010 Laser Science to Photonic Applications.
[16] R. Fonseca,et al. Near-GeV-energy laser-wakefield acceleration of self-injected electrons in a centimeter-scale plasma channel. , 2004, Physical review letters.
[17] P Krejcik,et al. Ionization-induced electron trapping in ultrarelativistic plasma wakes. , 2007, Physical review letters.
[18] J. Cary,et al. VORPAL: a versatile plasma simulation code , 2004 .
[19] J. Cary,et al. Single-stage plasma-based correlated energy spread compensation for ultrahigh 6D brightness electron beams , 2017, Nature Communications.
[20] J. Osterhoff,et al. Intrinsic Stabilization of the Drive Beam in Plasma-Wakefield Accelerators. , 2018, Physical review letters.
[21] Ulrich Schramm,et al. Investigating the Key Parameters of a Staged Laser- and Particle Driven Plasma Wakefield Accelerator Experiment , 2017 .
[22] E. Esarey,et al. Plasma electron trapping and acceleration in a plasma wake field using a density transition. , 2001, Physical review letters.
[23] W. White,et al. Beyond injection: Trojan horse underdense photocathode plasma wakefield acceleration , 2013 .
[24] Alex Murokh,et al. Ultrahigh brightness bunches from hybrid plasma accelerators as drivers of 5th generation light sources , 2014 .
[25] M. Yeung,et al. Demonstration of passive plasma lensing of a laser wakefield accelerated electron bunch , 2016 .
[26] Mitigation of the Hose Instability in Plasma-Wakefield Accelerators. , 2017, Physical review letters.
[27] O. Kononenko,et al. Optimizing density down-ramp injection for beam-driven plasma wakefield accelerators , 2017 .
[28] C. Geddes,et al. Two-color laser-ionization injection. , 2014, Physical review letters.
[29] Dodd,et al. Laser injection of ultrashort electron pulses into Wakefield plasma waves. , 1996, Physical review letters.
[30] J. Rosenzweig,et al. Ultracold electron bunch generation via plasma photocathode emission and acceleration in a beam-driven plasma blowout. , 2012, Physical review letters.
[31] N. Barov,et al. Energy loss of a high-charge bunched electron beam in plasma: Analysis , 2004 .
[32] B. Mahieu,et al. High-Brilliance Betatron γ-Ray Source Powered by Laser-Accelerated Electrons. , 2017, Physical review letters.
[33] P. Masson-Laborde,et al. Giga-electronvolt electrons due to a transition from laser wakefield acceleration to plasma wakefield acceleration , 2014, 1408.2494.
[34] M. J. V. Streeter,et al. Wakefield-induced ionization injection in beam-driven plasma accelerators , 2015, 1506.05486.
[35] Erik Lefebvre,et al. Few femtosecond, few kiloampere electron bunch produced by a laser-plasma accelerator , 2011 .
[36] J Osterhoff,et al. High-quality electron beams from beam-driven plasma accelerators by wakefield-induced ionization injection. , 2013, Physical review letters.