Laser Wakefield Electron Acceleration

Laser Wakefield Electron Acceleration: A Novel Approach Employing Supersonic Microjets and Few-Cycle Laser Pulses (Repost)

Laser Wakefield Electron Acceleration: A Novel Approach Employing Supersonic Microjets and Few-Cycle Laser Pulses by Karl Schmid
English | PDF (True) | 2011 | 169 Pages | ISBN : 3642199496 | 6.2 MB

This thesis covers the few-cycle laser-driven acceleration of electrons in a laser-generated plasma. This process, known as laser wakefield acceleration (LWFA), relies on strongly driven plasma waves for the generation of accelerating gradients in the vicinity of several 100 GV/m, a value four orders of magnitude larger than that attainable by conventional accelerators. This thesis demonstrates that laser pulses with an ultrashort duration of 8 fs and a peak power of 6 TW allow the production of electron energies up to 50 MeV via LWFA. The special properties of laser accelerated electron pulses, namely the ultrashort pulse duration, the high brilliance, and the high charge density, open up new possibilities in many applications of these electron beams.
Laser Wakefield Electron Acceleration: A Novel Approach Employing Supersonic Microjets and Few-Cycle Laser Pulses

Laser Wakefield Electron Acceleration: A Novel Approach Employing Supersonic Microjets and Few-Cycle Laser Pulses By Karl Schmid (auth.)
2011 | 166 Pages | ISBN: 3642199496 | PDF | 4 MB
Laser Wakefield Electron Acceleration: A Novel Approach Employing Supersonic Microjets and Few-Cycle Laser Pulses (repost)

Karl Schmid, "Laser Wakefield Electron Acceleration: A Novel Approach Employing Supersonic Microjets and Few-Cycle Laser Pulses"
English | 2011 | ISBN: 3642199496 | PDF | 177 pages | 3.6 MB

This thesis covers the few-cycle laser-driven acceleration of electrons in a laser-generated plasma. This process, known as laser wakefield acceleration (LWFA), relies on strongly driven plasma waves for the generation of accelerating gradients in the vicinity of several 100 GV/m, a value four orders of magnitude larger than that attainable by conventional accelerators. This thesis demonstrates that laser pulses with an ultrashort duration of 8 fs and a peak power of 6 TW allow the production of electron energies up to 50 MeV via LWFA. The special properties of laser accelerated electron pulses, namely the ultrashort pulse duration, the high brilliance, and the high charge density, open up new possibilities in many applications of these electron beams.

Phase Space Dynamics in Plasma Based Wakefield Acceleration (Repost)  eBooks & eLearning

Posted by AvaxGenius at March 8, 2020
Phase Space Dynamics in Plasma Based Wakefield Acceleration (Repost)

Phase Space Dynamics in Plasma Based Wakefield Acceleration by Xinlu Xu
English | PDF,EPUB | 2020 | 138 Pages | ISBN : 9811523800 | 30.7 MB

This book explores several key issues in beam phase space dynamics in plasma-based wakefield accelerators. It reveals the phase space dynamics of ionization-based injection methods by identifying two key phase mixing processes. Subsequently, the book proposes a two-color laser ionization injection scheme for generating high-quality beams, and assesses it using particle-in-cell (PIC) simulations.

Phase Space Dynamics in Plasma Based Wakefield Acceleration  eBooks & eLearning

Posted by roxul at Jan. 2, 2020
Phase Space Dynamics in Plasma Based Wakefield Acceleration

Xinlu Xu, "Phase Space Dynamics in Plasma Based Wakefield Acceleration "
English | ISBN: 9811523800 | 2020 | 129 pages | EPUB, PDF | 23 MB + 8 MB

Minimization Problems for the Witness Beam in Relativistic Plasma Cavities  eBooks & eLearning

Posted by AvaxGenius at Nov. 22, 2024
Minimization Problems for the Witness Beam in Relativistic Plasma Cavities

Minimization Problems for the Witness Beam in Relativistic Plasma Cavities by Melinda Hagedorn
English | PDF EPUB (True) | 2024 | 81 Pages | ISBN : 3658462256 | 7.9 MB

This thesis deals with an optimization problem from the field of theoretical plasma physics. Specifically, it deals with the question of how the accelerated electrons are spatially arranged in a plasma wave generated by a laser pulse. An internal structure of this so-called witness beam is of interest for the radiation characteristics of such electron beams, in particular with regard to the coherence of the generated radiation. The resulting internal structure of the electron beam is a result of the interaction of the electrons with each other and the electric fields of the wakefield, therefore it is determined by solving a minimization problem. The thesis builds on previous results in this field and aims to find suggestions for improved algorithms to determine the minimum sought.