<p>A dense sheet of electrons accelerated to close to the speed of light can act as a tuneable mirror that can generate bright bursts of laser-like radiation in the short wavelength range simply via the reflection of a counter-propagating laser pulse. This thesis investigates the generation of such
Relativistically Intense Laser–Microplasma Interactions
✍ Scribed by Tobias Ostermayr
- Publisher
- Springer International Publishing
- Year
- 2019
- Tongue
- English
- Leaves
- 175
- Series
- Springer Theses
- Edition
- 1st ed.
- Category
- Library
No coin nor oath required. For personal study only.
✦ Synopsis
This dissertation covers several important aspects of relativistically intense laser–microplasma interactions and some potential applications. A Paul-trap based target system was developed to provide fully isolated, well defined and well positioned micro-sphere-targets for experiments with focused peta-watt laser pulses. The laser interaction turned such targets into microplasmas, emitting proton beams with kinetic energies exceeding 10 MeV. The proton beam kinetic energy spectrum and spatial distribution were tuned by variation of the acceleration mechanism, reaching from broadly distributed spectra in relatively cold plasma expansions to spectra with relative energy spread as small as 20% in spherical multi-species Coulomb explosions and in directed acceleration processes. Numerical simulations and analytical calculations support these experimental findings and show how microplasmas may be used to engineer laser-driven proton sources. In a second effort, tungsten micro-needle-targets were used at a peta-watt laser to produce few-keV x-rays and 10-MeV-level proton beams simultaneously, both measured to have only few-µm effective source-size. This source was used to demonstrate single-shot simultaneous radiographic imaging with x-rays and protons of biological and technological samples.
Finally, the dissertation discusses future perspectives and directions for laser–microplasma interactions including non-spherical target shapes, as well as thoughts on experimental techniques and advanced quantitative image evaluation for the laser driven radiography.
✦ Table of Contents
Front Matter ....Pages i-xix
Front Matter ....Pages 1-1
Scientific Context and Motivation (Tobias Ostermayr)....Pages 3-16
Laser-Plasmas (Tobias Ostermayr)....Pages 17-30
Front Matter ....Pages 31-31
High-Power Lasers (Tobias Ostermayr)....Pages 33-44
Transportable Paul Trap for Isolated Micro-targets in Vacuum (Tobias Ostermayr)....Pages 45-59
Front Matter ....Pages 61-61
Laser-Driven Ion Acceleration Using Truly Isolated Micro-sphere Targets (Tobias Ostermayr)....Pages 63-103
A Laser-Driven Micro-source for Simultaneous Bi-modal Radiographic Imaging (Tobias Ostermayr)....Pages 105-131
Front Matter ....Pages 133-133
Summary (Tobias Ostermayr)....Pages 135-137
Challenges and Perspectives (Tobias Ostermayr)....Pages 139-146
Back Matter ....Pages 147-166
✦ Subjects
Physics; Plasma Physics; Optics, Lasers, Photonics, Optical Devices; Particle Acceleration and Detection, Beam Physics
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