A. Martinez de la Ossa
University of Hamburg
Network
Latest external collaboration on country level. Dive into details by clicking on the dots.
Publication
Featured researches published by A. Martinez de la Ossa.
Nuclear Instruments & Methods in Physics Research Section A-accelerators Spectrometers Detectors and Associated Equipment | 2016
Alexander Aschikhin; C. Behrens; Simon Bohlen; John Dale; N. Delbos; L. di Lucchio; E. Elsen; Jh Erbe; Matthias Felber; B. Foster; Lars Goldberg; J. Grebenyuk; Jan-Niclas Gruse; Bernhard Hidding; Zhanghu Hu; S. Karstensen; Olena Kononenko; V. Libov; K. Ludwig; A. R. Maier; A. Martinez de la Ossa; Timon Mehrling; C. A. J. Palmer; F. Pannek; L. Schaper; Holger Schlarb; Bernhard Schmidt; S. Schreiber; Jan-Patrick Schwinkendorf; Harrison Steel
The FLASHForward project at DESY is a pioneering plasma-wakefield acceleration experiment that aims to produce, in a few centimetres of ionised hydrogen, beams with energy of order GeV that are of quality sufficient to be used in a free-electron laser. The plasma is created by ionising a gas in a gas cell with a multi-TW laser system. The plasma wave will be driven by high-current-density electron beams from the FLASH linear accelerator. The laser system can also be used to provide optical diagnostics of the plasma and electron beams due to the <30 fs synchronisation between the laser and the driving electron beam. The project will explore both external and internal witness-beam injection techniques. The operation parameters of the experiment are discussed, as well as the scientific programme.
Physics of Plasmas | 2015
A. Martinez de la Ossa; Timon Mehrling; L. Schaper; Matthew Streeter; J. Osterhoff
We present a detailed analysis of the features and capabilities of Wakefield-Induced Ionization (WII) injection in the blowout regime of beam driven plasma accelerators. This mechanism exploits the electric wakefields to ionize electrons from a dopant gas and trap them in a well-defined region of the accelerating and focusing wake phase, leading to the formation of high-quality witness-bunches [Martinez de la Ossa et al., Phys. Rev. Lett. 111, 245003 (2013)]. The electron-beam drivers must feature high-peak currents ( Ib0≳8.5u2009kA) and a duration comparable to the plasma wavelength to excite plasma waves in the blowout regime and enable WII injection. In this regime, the disparity of the magnitude of the electric field in the driver region and the electric field in the rear of the ion cavity allows for the selective ionization and subsequent trapping from a narrow phase interval. The witness bunches generated in this manner feature a short duration and small values of the normalized transverse emittance ( k...
Physics of Plasmas | 2018
T. J. Mehrling; C. Benedetti; C. B. Schroeder; A. Martinez de la Ossa; J. Osterhoff; E. Esarey; W. P. Leemans
Hosing is a major challenge for the applicability of plasma wakefield accelerators and its modeling is therefore of fundamental importance to facilitate future stable and compact plasma-based particle accelerators. In this contribution, we present a new model for the evolution of the plasma centroid, which enables the accurate investigation of the hose instability in the nonlinear blowout regime. It paves the road for more precise and comprehensive studies of hosing, e.g., with drive and witness beams, which were not possible with previous models.
Physics of Plasmas | 2018
T. J. Mehrling; C. Benedetti; C. B. Schroeder; A. Martinez de la Ossa; J. Osterhoff; E. Esarey; W. P. Leemans
Author(s): Mehrling, TJ; Benedetti, C; Schroeder, CB; Martinez De La Ossa, A; Osterhoff, J; Esarey, E; Leemans, WP | Abstract:
Journal of Physics: Conference Series | 2018
E. Svystun; R.W. Assmann; U. Dorda; A. Ferran Pousa; T. Heinemann; B. Marchetti; A. Martinez de la Ossa; P.A. Walker; M.K. Weikum; J. Zhu
The EuPRAXIA (European Particle Research Accelerator with excellence In Applications) project aims at producing a conceptual design for the worldwide plasma-based accelerator facility, capable of delivering multi-GeV electron beams with high quality. This accelerator facility will be used for various user applications such as compact X-ray sources for medical imaging and high-energy physics detector tests. EuPRAXIA explores different approaches to plasma acceleration techniques. Laser-driven plasma wakefield acceleration with external injection of an RF-generated electron beam is one of the basic research directions of EuPRAXIA. We present studies of electron beam acceleration to GeV energies by a two-stage laser wakefield acceleration with external injection from an RF accelerator. Electron beam injection, acceleration and extraction from the plasma, using particle-in-cell simulations, are investigated.
Journal of Physics: Conference Series | 2018
Pardis Niknejadi; R. D’Arcy; M C Kaluza; V. Libov; A. Martinez de la Ossa; T. J. Mehrling; J. Osterhoff; C A J Palmer; K. Poder; A Sävert; L. Schaper; M B Schwab; C Wirth
Density modulations in plasma caused by a high-intensity laser or a high charge density electron pulse can generate extreme acceleration fields. Acceleration of electrons in such fields may produce ultra-relativistic, quasi-monoenergetic, ultra-short electron bunches over distances orders of magnitudes shorter than in state-of-the-art radio-frequency accelerators. FLASHForward is a beam-driven plasma wakefield accelerator (PWFA) project at DESY with the goal of producing, characterizing, and utilizing such beams. Temporal characterization of the acceleration process is of crucial importance for improving the stability and control in PWFA beams. While measurement of the transient field of the femtosecond bunch in a single shot is challenging, in recent years novel techniques with great promise have been developed [1, 2]. This work discusses the plans and status of the transverse diagnostics at FLASHForward.
Journal of Physics: Conference Series | 2017
A. Ferran Pousa; R. Brinkmann; A. Martinez de la Ossa; R.W. Assmann
The use of external injection in plasma acceleration is attractive due to the high control over the electron beam parameters, which can be tailored to meet the plasma requirements and therefore preserve its quality during acceleration. However, using this technique requires an extremely fine synchronization between the driver and witness beams. In this paper, we present a new scheme for external injection in a laser-driven plasma accelerator that would allow, for the first time, sub-femtosecond timing jitter between laser pulse and electron beam.
Nuclear Instruments & Methods in Physics Research Section A-accelerators Spectrometers Detectors and Associated Equipment | 2014
M. Gross; R. Brinkmann; J. Good; Florian Grüner; M. Khojoyan; A. Martinez de la Ossa; J. Osterhoff; G. Pathak; C. B. Schroeder; F. Stephan
arXiv: Accelerator Physics | 2018
A. Ferran Pousa; R.W. Assmann; A. Martinez de la Ossa
Nuclear Instruments & Methods in Physics Research Section A-accelerators Spectrometers Detectors and Associated Equipment | 2018
V. Libov; Alexander Aschikhin; John Dale; R. D’Arcy; K. Ludwig; A. Martinez de la Ossa; Timon Mehrling; Jan-Hendrik Roeckemann; L. Schaper; Bernhard Schmidt; S. Schröder; Stephan Wesch; Johann Zemella; J. Osterhoff