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This Dissertation deals with the development of FAIR-relevant X-ray diagnostics based on the interaction of lasers and particle beams with matter. The associated experimental methods are supposed to be employed in the HIHEX-experiments in the HHT-cave of the GSI Helmholtz Center for Heavy-Ion Research GmbH (GSI) in Phase-0 and in the APPA-cave at the Facility for Antiproton and Ion Research in Darmstadt, Germany.
Diagnostic of high aerial density targets that will be used in FAIR experiments demands intense and highly penetrating X-ray sources. Laser generated well-directe relativistic electron beams that interact with high Z materials is an excellent tool for generation of short-pulse high luminous sources of MeV-gammas.
In pilot experiments carried out at the PHELIX laser system, GSI Darmstadt, relativistic electrons were produced in a long scale plasma of near critical electron density (NCD) by the mechanism of the direct laser acceleration (DLA). Low density polymer foam layers preionised by a well-defined nanosecond laser pulse were used as NCD targets. The analysis of the measured electron spectra showed up to 10- fold increase of the electron "temperature" from T_Hot = 1–2 MeV, measured for the case of the interaction of 1–2 ×10^19 Wcm^(−2) ps-laser pulse with a planar foil, up to 14 MeV for the case when the relativistic laser pulse propagates through the by a ns-pulse preionised foam layer. In this case, up to 80–90 MeV electron energy was registered. An increase of the electron energy was accompanied by a strong increase of the number of relativistic electrons and well-defined directionality of the relativistic electron beam measured to be (12 ±1)° (FWHM). This directionality increases the gamma flux on target by far compared to the soft X-ray sources.
Additionally to laser based active diagnostics, passive techniques involving inherent X-ray fluorescence radiation of projectile and target emitted during heavy-ion target interaction can be used to measure the ion beam distribution on shot. This information is of great importance, since the target size is chosen to be smaller than the beam focus in order to ensure homogeneous heating of the HIHEX-target by the ion beam. High amounts of parasitic radiation and activation of experimental equipment is expected for experiments at the APPA-cave. For this reason, all electronic devices must be placed at a safe distance to the target chamber. In order to transport the signal over a large distance, the X-ray image of the target irradiated by heavy-ions has to be converted into an optical one.
For these purposes, the X-ray Conversion to Optical radiation and Transport (XCOT)-system was developed in the frame of a BMBF-project and commissioned in two beamtimes at the UNILAC, GSI during this work.
In experiments, we observed intense radiation of target atoms (K-shell transitions in Cu at 8–8.3 keV and L-shell transition in Ta) ionised in collisions with heavy ions as well as Doppler-shifted L-shell transitions of Au-projectiles passing through targets. This radiation can be used for monochromatic (dispersive elements like bent crystals) or polychromatic (pinhole) 2D X-ray mapping of the ion beam intensity distribution in the interaction region during the beam-target interaction. We measured the efficiency of the X-ray photon production depending on the target thickness and the number of ions passing through the target. The spatial resolution of the XCOT-system based on the multi-pinhole camera was measured to be (91±17) μm for the image magnification factor M = 2. It was considerably improved by application of a toroidally bent quartz crystal and reached 30 μm at M = 6. This resolution is optimal to image the distribution of a 1mm in diameter ion beam. As next step, the XCOT-system will be tested during the SIS18 beam-time at the HHT-experimental area.
Quantum entanglement plays a basic role in quantum information science. The creation of entanglement between qubits is of fundamental importance for further computation processing like quantum computation, quantum cryptography, quantum teleportation, quantum computers… We present here a symmetric electron-electron scattering experiment to determine the experimental parameters which are necessary to produce a source of entangled electrons. In this Moeller scattering experiment the electrons differ from each other only by their spin direction. At these conditions a spin entanglement of the scattered electrons is expected. To demonstrate the spin entanglement, a single particle resolved spin measurement of the electrons has to be performed. A high ratio of measured coincidences compare to random could be demonstrated. It is shown, that this ratio is related to an experiment depended nearly constant efficiency for the coincidence detection. In order to proof the spin entanglement, the goal is to measure the final polarization state of the electrons at different scattering directions to observe a spin anti correlation between these spin states of the Moeller electrons. The usual method to determine the electron polarization is based on an asymmetric scattering experiment with a high Z target. This scattering may yield an asymmetry due to a different spin-orbit coupling of the electrons. The main problem of polarized electron studies at keV-particle energy is the low efficiency of usual spin polarimeters. This low efficiency impedes or prevents electron spin resolved coincidence measurements because of necessarily induced random coincidences. To enhance the efficiency of the spin detection, a new compact mini-Mott spin analyzer has been developed. Due to a compact small size of this analyzer, a higher efficiency is obtained now, which is a prerequisite to the electron spin resolved coincidence measurements. Till date, the asymmetry measurement have been performed where one Mott analyzer rotated by an angle around the axis. The reducing asymmetry is in agreement with a prediction of quantum mechanic; however, the large systematic errors of the measurement have been estimated. As a next step for investigation of spin entanglement it is planned to increase the overall efficiency of the experiment by having higher initial energy and minimize error of the measurement by applying new kind of detectors.
The Facility for Antiproton and Ion Research (FAIR) at GSI Darmstadt will provide unprecedented intensities of protons and heavy ions up to uranium at energies of up to 29 GeV for protons and 2.7 GeV/u for Uranium 28+. To achieve high intensities in the synchrotron accelerators, high beam currents have to be provided by the injector linear accelerators. High current heavy ion beams are provided by the Universal Linear Accelerator (UNILAC), which in its current state will not be able to provide the required FAIR beam currents. This thesis deals with the development of upgrades for the UNILAC to ensure its high current capability. The first improvement is a matching section (MEBT) for the interface between the RFQ and the IH-DTL of the existing high current injector HSI at the UNILAC. With this new MEBT section, particle losses are eliminated and the overall beam quality is improved. As a second improvement, a complete replacement of the existing Alvarez-DTL is presented. A combination of efficient IH-type cavities and KONUS beam dynamics results in a reduction of the linac length from about 60 m (Alvarez) to just 23 m (new IH-DTL) while providing the same energy and fulfilling FAIR requirements of a high beam current and beam quality. This thesis contains a detailed beam dynamics design of the new linac including some fundamental investigations of the KONUS beam dynamics concept. A cross-check of the beam dynamics design was performed with two independent multi-particle simulation codes. Detailed error studies were conducted to investigate the influence of manufacturing, alignment and operating errors on the beam dynamics performance. Additionally, all five linac cavities were designed, optimized, and their RF parameters including power requirements calculated to provide a comprehensive linac design.
In der Experimentierhalle der Physik am Campus Riedberg der Goethe – Universität wird gegenwärtig die Beschleunigeranlage FRANZ aufgebaut. FRANZ steht für Frankfurter Neutronenquelle am Stern-Gerlach-Zentrum. Die Anlage bietet vielfältige Experimentiermöglichkeiten in der Untersuchung intensiver, gepulster Protonenstrahlen. Ein Forschungsschwerpunkt an den sekundären Neutronenstrahlen sind Messungen zur nuklearen
Astrophysik. Die Neutronen werden durch einen 2 MeV Protonenstrahl mittels der Reaktion 7Li (p, n) 7Be erzeugt. Die geplanten Experimente erfordern sowohl eine hier weltweit erstmals realisierte Pulsrepetitionsrate von bis zu 250 kHz bei Pulsströmen im 100 mA – Bereich als auch eine extreme Pulskompression auf eine Nanosekunde bei dann auftretenden Pulsströmen im Ampere – Bereich. Daneben ist auch ein Dauerstrich – Strahlbetrieb im mA – Strombereich möglich. Auch viele einzelne Beschleunigerkomponenten wie die Ionenquelle, der Chopper zur Pulsformung, die hochfrequent gekoppelte RFQ-IH-Kombination, der Rebuncher in Form einer CH – Struktur und der Bunchkompressor sind Neuentwicklungen. Mittlere Strahlleistungen von bis zu 24 kW treten im Niederenergiestrahltransportbereich auf, da die Ionenquelle grundsätzlich im Dauerstrich zu betreiben ist, auch bei Hochstrom mit hohen Pulsrepetitionsraten. Der Personen- und Geräteschutz spielt damit auch eine wesentliche Rolle bei der Auslegung des Kontrollsystems für FRANZ. Der Aufbau von FRANZ und seine wesentlichen Komponenten werden in Kapitel 2 erläutert. Die vielen unterschiedlichen Komponenten wie Hochspannungsbereich, Magneten, Hochfrequenzbauteile und Kavitäten, Vakuumbauteile, Strahldiagnose und Detektoren machen plausibel, dass auch das Kontrollsystem für eine solche Anlage speziell ausgelegt werden muss. In Kapitel 4 werden zum Vergleich die Konzepte zur Steuerung und Regelung aktueller, großer Beschleunigerprojekte aufgezeigt, nämlich für die „European Spallation Source ESS“ und für die „Facility for Antiproton and Ion Research FAIR“. In der vorliegenden Arbeit wurde die Ionenquelle als komplexe Beschleunigerkomponente ausgewählt, um Entwicklungen zur Steuerung und Regelung durchzuführen und zu testen. Zum Anfahren und Betreiben der Ionenquelle wurde ein Flussdiagramm (Abb. 5.15) entwickelt und realisiert. Im Detail wurden Untersuchungen zur Abhängigkeit der Heizkathodenparameter von der Betriebsdauer gemacht. Daraus konnte ein Algorithmus zur Vorhersage eines rechtzeitigen Filamentaustausches abgeleitet werden. Weiterhin konnte die Nachregelung des Kathodenheizstromes automatisiert werden, um damit die Bogenentladungsspannung innerhalb eines Intervalls von ± 0.5 V zu stabilisieren. Das Anfahren des Filamentstroms wurde ebenfalls automatisiert. Dazu wird die Vakuumdruckänderung in Abhängigkeit der Filamentstromerhöhung gemessen, ausgewertet und daraus der nächste erlaubte Stromerhöhungsschritt abgeleitet. Auf diese Weise wird der Betriebszustand schneller und kontrollierter erreicht als bei manuellem Hochfahren. Das Ziel eines unbemannten Ionenquellenbetriebs ist damit näher gerückt. In einem ersten Test zur Komponentensteuerung und zur Datenaufnahme wurde ein Ionenstrahl extrahiert und durch den ersten Fokussierungsmagneten – einen Solenoiden – transportiert. Es wurde der Erregungsstrom des Solenoiden sowie die Strahlenergie automatisch durchgefahren, die Daten abgespeichert und daraus ein Kontourplot zum gemessenen Strahlstrom hinter der Fokussierlinse erstellt (Abb. 5). Die vorliegende Arbeit beschäftigt sich nur mit den „langsamen“ Steuerungs- und Regelungsprozessen, während die schnellen Prozesse im Hochfrequenzregelungssystem unabhängig geregelt werden. Neben der Überwachung des Betriebszustandes aller Komponenten werden auch alle für den Service und die Personensicherheit benötigten Daten weggeschrieben. Das System basiert auf MNDACS (Mesh Networked Data Acquisition and Control System) und ist in JAVA geschrieben. MNDACS besteht aus einem Kernel, welcher die Komponententreiber-Software sowie den Netzwerkserver und das graphische Netzwerkinterface (GUI) betreibt. Weterhin gehört dazu das Driver Abstraction Layer (DAL), welches den Zugang zu weiteren Computern oder zu lokalen Treibern ermöglicht. CORBA stellt die Middleware für Netzwerkkommunikation dar. Dadurch wird Kommunikation mit externer Software geregelt, weiterhin wird die Umlegung von Kommunikation im Fall von Leitungsunterbrechungen oder einem lokalen Computerabsturz festgelegt. Es gibt bei FRANZ zwei Kontrollebenen: Über Ethernet läuft die „High Level Control“ und die Datenverarbeitung. Über die „Low Level Control“ läuft das Interlock – und Sicherheitssystem. Die Netzwerkverbindungen laufen über 1 Gb Ethernet Links, womit ein schneller Austausch auch bei lokalen Netzwerkstörungen noch möglich ist. Um bei Stromausfällen das Computersystem am Laufen zu halten, wurde im Rahmen dieser Arbeit ein „Uninterruptable Power Supply“ UPS beschafft und erfolgreich am Hochspannungsterminal getestet.
The high energy loss of heavy ions in matter as well as the small angular scattering makes heavy ion beams an excellent tool to produce almost cylindrical and homogeneously excited volumes in matter. This aspect can be used to pump short wavelength lasers. In an experiment performed at the GSI (Gesellschaft für Schwerionenforschung, Darmstadt, Germany) ion accelerator facility in December 2005 the well-known KrF* excimer laser was pumped with an intense high energy uranium beam. Pulses of an uranium beam with initial particle energy of 250 MeV per nucleon, provided by heavy-ion-synchrotron SIS-18, were delivered to the HHT-target station and then stopped inside a gas laser cell. The maximum beam intensity reached in the experiment was 2,5·109 particles per pulse, which resulted in 34 J/g specific energy deposited in the laser gas. By applying electron cooling and a bunch compression technique at SIS-18, the beam pulses were compressed down to 110 ns (FWHM). A mixture of an excimer laser premix gas (95,5% Kr + 0,5% F2) and a buffer gas (Ar 4.8) was used as the laser gas in proportions of 35/65 and 60/40, respectively. The gas pressure inside the laser cell was varied in the range of 1,2÷2 bar in continues flow mode. The experimental setup consisted of a 1 m long stainless steel tube with a number of diagnostic viewports and two mirror adjustment units. The optical cavity was formed by a flat, Alcoated mirror at the beam entrance and a second dielectrically coated, highly reflective mirror with 3 m radius of curvature at a distance of 1,3 m. A beam of heavy ions has been used to pump a short wavelength gas laser for the first time. Laser effect on the KrF* laser transition (λ = 248 nm) has been successfully demonstrated. Laser threshold for this specific setup was reached with a beam intensity of 1,2·109 particles per pulse. Laser action has been clearly proofed by the following methods: appearance of the laser line, spectral narrowing of the laser line, temporal narrowing of the laser signal, non-linear response of the laser output intensity on the pumping power, and cavity disalignment effect. An energy of the laser pulse of about 2 mJ was measured for an ion beam intensity of 2·109 particles per pulse. The time delay of the onset of the laser emission with respect to the pumping pulse was measured as a function of ion beam intensity. The dependence of spontaneous emission spectra on the gas pressure in a range of 1,3÷2 bar was observed and the optimal gas pressure for laser experiments in the sense of laser efficiency was concluded. As a next step in studying short wavelength lasers pumped with heavy ion beams it is planned to reduce the laser wavelength down to the VUV region of the spectrum, and to proceed to the excimer lasers of the pure rare gases: Xe2 * (λ = 172 nm), Kr2 * (λ = 146 nm), Ar2 * (λ = 126 nm), Ne2 * (λ = 83 nm) and He2 * (λ = 80 nm). We believe that the use of heavy ion beams as a pumping source may lead to new pumping schemes on the higher lying level transitions and considerably shorter wavelengths (XUV and X-ray spectral region), which rely on the high cross sections for multiple ionization of the target species.
Charge states and energy loss of heavy ions after passing an inductively coupled plasma target
(2019)
In various kinds of fields such as accelerator physics, warm dense matter, high energy density physics, and inertial confinement fusion, heavy ions beam-plasma interaction plays an important role, and abundant investigations have been and are being carried out. Taking advantage of a good level of understanding on the interaction between a swift heavy ions beam and a hydrogen gas discharge plasma, an engineering application of a spherical theta-pinch device as a plasma stripper for FAIR (facility for antiproton and ion research) and a scientific application of a swift heavy ions beam as a novel plasma diagnostic tool are proposed and investigated.
The spherical theta-pinch device is manufactured, improved, and comprehensively tested for its application as a plasma stripper. The device is mainly composed of an evacuated glass vessel that can be filled with gas (for example: hydrogen) and a LRC circuit including a capacitors bank and a set of coils. Discharging the device at an initial hydrogen pressure in the glass vessel and an operation voltage for the capacitors bank, a circuit current oscillates in the LRC circuit. The oscillating circuit current in the set of coils induces a corresponding alternating magnetic field inside the glass vessel to ignite and maintain a hydrogen plasma.
Based on the built setup of circuit and plasma diagnostics, the measurements of circuit current, plasma light emission, plasma shape, and hydrogen Balmer series are carried out. The recorded signals of the circuit current and the plasma light emission of many consecutively repetitive discharges overlap perfectly, which indicate a very good reproducibility of the parameters of the LRC circuit during discharge and the generated plasma. From the measured circuit current, a real energy transfer efficiency is calculated by our proposed new model, which shows its overall tendency varying with the hydrogen pressure and the operation voltage, including the maximum value of 25% occurring at an initial hydrogen pressure of around 25 Pa and a maximum operation voltage of 14 kV. So, the discharge at an initial hydrogen pressure of 20 Pa and an operation voltage of 14 ...
This Ph. D. thesis with the title "Characterisation of laser-driven radiation beams: Gamma-ray dosimetry and Monte Carlo simulations of optimised target geometry for record-breaking efficiency of MeV gamma-sources" is dedicated to the study of the acceleration of electrons by intense sub-picosecond laser pulses propagating in a sub-millimeter plasma with near-critical electron density (NCD) and resulting generation of the gamma bremsstrahlung and positrons in the targets of different materials and thickness.
Laser-driven particle acceleration is an area of increasing scientific interest since the recent development of short pulse, high-intensity laser systems. The interaction of intense high-energy, short-pulse lasers with solid targets leads to the production of high-energy electrons in the relativistic laser intensity regime of more than 1018 W /cm2. These electrons play the leading role in the first stage of the interaction of laser with matter, which leads to the creation of laser sources of particles and radiation. Therefore, the optimisation of the electron beam parameters in the direction of increasing the effective temperature and beam charge, together with a slight divergence, plays a decisive role, especially for further detection and characterisation of laser-driven photon and positron beams.
In the context of this work, experiments were carried out at the PHELIX laser system (Petawatt High-Energy Laser for Heavy Ion eXperiments) at GSI Helmholtz Center for Heavy-Ion Research GmbH in Darmstadt, Germany. This thesis presents a thermoluminescence dosimetry (TLD) based method for the measurement of bremsstrahlung spectra in the energy range from 30 keV to 100 MeV. The results of the TLD measurements reinforced the observed tendency towards the strong increase of the mean electron energy and number of super-ponderomotive electrons. In the case of laser interaction with long-scale NCD-plasmas, the dose caused by the gamma-radiation measured in the direction of the laser pulse propagation showed a 1000-fold increase compared to the high contrast shots onto plane foils and doses measured perpendicular to the laser propagation direction for all used combinations of targets and laser parameters.
In this thesis I present novel characterisation method using a combination of TLD measurements and Monte Carlo FLUKA simulations applicable to laser-driven beams. The thermoluminescence detector-based spectrometry method for simultaneous detection of electrons and photons from relativistic laser-induced plasmas initially developed by Behrens et al. (Behrens et al., 2003) and further applied in experiments at PHELIX laser (Horst et al., 2015) delivered good spectral information from keV energies up to some MeV, but as it was presented in (Horst et al., 2015) this method was not really suitable to resolve the content of photon spectra above 10 MeV because of the dominant presence of electrons. Therefore, I created new evaluation method of the incident electron spectra from the readings of TLDs. For this purpose, by means of MatLab programming language an unfolding algorithm was written. It was based on a sequential enumeration of matching data series of the dose values measured by the dosimeters and calculated with of FLUKA-simulations. The significant advantage of this method is the ability to obtain the spectrum of incident electrons in the low energy range from 1 keV, which is very difficult to measure reliably using traditional electron spectrometers.
The results of the evaluation of the effective temperature of super-ponderomotive electrons retrieved from the measured TLD-doses by means of the Monte-Carlo simulations demonstrated, that application of low density polymer foam layers irradiated by the relativistic sub-ps laser pulse provided a strong increase of the electron effective temperature from 1.5 - 2 MeV in the case of the relativistic laser interaction with a metallic foil up to 13 MeV for the laser shots onto the pre-ionized foam and more than 10 times higher charge carried by relativistic electrons.
The progressive simulation method of whole electron spectra described with two -temperatures Maxwellian distribution function has been developed and the results of dose simulations were compared with the acquired experimental data. The advanced feature of this method, which distinguishes it from the results of the simulation of the photon spectrum using the interaction with the target of mono-energetic electron beams (Nilgün Demir, 2013; Nilgün Demir, 2019) or the initial electron spectrum expressed as a function of one electron temperature (Fiorini, 2012), is the ability to simulate the initial electron spectrum described by the Maxwellian distribution function with two temperatures.
The important objective of this thesis was dedicated to the study and characterisation of laser-driven photon beams. In addition to this, the positron beams were evaluated. The investigation of bremsstrahlung photons and positrons spectra from high Z targets by varying the target thickness from 10 µm to 4 mm in simulated models of the interactions of electron spectra with Maxwellian distribution functions allowed to define an optimal thickness when the fluences of photons and positrons are maximal. Furthermore based on the results of FLUKA simulations the gold material was found to be the most suitable for the future experiments as e − γ target because of its highest bremsstrahlung yield.
Additionally Monte Carlo simulations were performed applying the obtained electron beam parameters from the electron acceleration process in laser-plasma interactions simulated with particle-in-cell (PIC) code for two laser energies of 20 J and 200 J. The corresponding electron spectra were imported into a Monte Carlo code FLUKA to simulate the production process of bremsstrahlung photons and positrons in Au converter. FLUKA simulations showed the record conversion of efficiency in MeV gammas can reach 10%, which reinforces the generation of positrons. The obtained results demonstrate the advantages of long-scale plasmas of near critical density (NCD) to increase the parameters of MeV particles and photon beams generated in relativistic laser-plasma interaction. The efficiency of the laser-driven generation of MeV electrons and photons by application of low-density polymer foams is essentially enhanced.