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The huge neutron fluxes offer the possibility to use research reactors to produce isotopes of interest, which can be investigated afterwards. An example is the half-lives of long-lived isotopes like 129I. A direct usage of reactor neutrons in the astrophysical energy regime is only possible, if the corresponding ions are not at rest in the laboratory frame. The combination of an ion storage ring with a reactor and a neutron guide could open the path to direct measurements of neutron-induced cross sections on short-lived radioactive isotopes in the astrophysically interesting energy regime.
I review a number of recent developments in the physics of compact stars containing deconfined quark matter, including (a) their cooling with possible phase transition from a fully gapped to a gapless phase of QCD at low temperatures and large isospin; (b) the transport coeffcients of the 2SC phase and the role played by the Aharonov-Bohm interactions between flux-tubes and unpaired fermions; (c) rapidly rotating compact stars and spin-down and spin-up induced phase transition between hadronic and QCD matter as well as between different phases of QCD.
The Gribov mode in hot QCD
(2017)
In thesis I investigate the possibility that at the smallest length scale (Planck scale) the very notion of "dimension" needs to be revisited. Due to "quantum effects" spacetime might become very turbulent at these scales and properties like those of "fractals" emerge, including a "scale dependent dimension". It seems that this "spontaneous dimensional reduction" and the appearance of a minimal physical length are very general effects that most approaches to quantum gravity share. Main emphasis is given to the"spectral dimension" and its calculation for strings and p-branes.
The thermodynamics of Quantum Chromodynamics (QCD) in external (electro-)magnetic fields shows some unexpected features like inverse magnetic catalysis, which have been revealed mainly through lattice studies. Many effective descriptions, on the other hand, use Landau levels or approximate the system by just the lowest Landau level (LLL). Analyzing lattice configurations we ask whether such a picture is justified. We find the LLL to be separated from the rest by a spectral gap in the two-dimensional Dirac operator and analyze the corresponding LLL signature in four dimensions. We determine to what extent the quark condensate is LLL dominated at strong magnetic fields.
The QCD phase diagram at finite temperature and density has attracted considerable interest over many decades now, not least because of its relevance for a better understanding of heavy-ion collision experiments. Models provide some insight into the QCD phase structure but usually rely on various parameters. Based on renormalization group arguments, we discuss how the parameters of QCD low-energy models can be determined from the fundamental theory of the strong interaction. We particularly focus on a determination of the temperature dependence of these parameters in this work and comment on the effect of a finite quark chemical potential. We present first results and argue that our findings can be used to improve the predictive power of future model calculations.
We present the black hole accretion code (BHAC), a new multidimensional general-relativistic magnetohydrodynamics module for the MPI-AMRVAC framework. BHAC has been designed to solve the equations of ideal general-relativistic magnetohydrodynamics in arbitrary spacetimes and exploits adaptive mesh refinement techniques with an efficient block-based approach. Several spacetimes have already been implemented and tested. We demonstrate the validity of BHAC by means of various one-, two-, and three-dimensional test problems, as well as through a close comparison with the HARM3D code in the case of a torus accreting onto a black hole. The convergence of a turbulent accretion scenario is investigated with several diagnostics and we find accretion rates and horizon-penetrating fluxes to be convergent to within a few percent when the problem is run in three dimensions. Our analysis also involves the study of the corresponding thermal synchrotron emission, which is performed by means of a new general-relativistic radiative transfer code, BHOSS. The resulting synthetic intensity maps of accretion onto black holes are found to be convergent with increasing resolution and are anticipated to play a crucial role in the interpretation of horizon-scale images resulting from upcoming radio observations of the source at the Galactic Center.
We present entropy-limited hydrodynamics (ELH): a new approach for the computation of numerical fluxes arising in the discretization of hyperbolic equations in conservation form. ELH is based on the hybridisation of an unfiltered high-order scheme with the first-order Lax-Friedrichs method. The activation of the low-order part of the scheme is driven by a measure of the locally generated entropy inspired by the artificial-viscosity method proposed by Guermond et al. (J. Comput. Phys. 230(11):4248-4267, 2011, doi:10.1016/j.jcp.2010.11.043). Here, we present ELH in the context of high-order finite-differencing methods and of the equations of general-relativistic hydrodynamics. We study the performance of ELH in a series of classical astrophysical tests in general relativity involving isolated, rotating and nonrotating neutron stars, and including a case of gravitational collapse to black hole. We present a detailed comparison of ELH with the fifth-order monotonicity preserving method MP5 (Suresh and Huynh in J. Comput. Phys. 136(1):83-99, 1997, doi:10.1006/jcph.1997.5745), one of the most common high-order schemes currently employed in numerical-relativity simulations. We find that ELH achieves comparable and, in many of the cases studied here, better accuracy than more traditional methods at a fraction of the computational cost (up to ∼50% speedup). Given its accuracy and its simplicity of implementation, ELH is a promising framework for the development of new special- and general-relativistic hydrodynamics codes well adapted for massively parallel supercomputers.
Terahertz (THz) physics are an emerging field of research dealing with electromagnetic radiation in the far-infrared to microwave region. The development of innovative technologies for the generation and detection of THz radiation has only in the recent past led to a tremendous rise of both fundamental research as well as investigation of possible fields of application for THz radiation. The most prominent reason has long been the scarce accessibility of the THz region of the electromagnetic spectrum - commonly loosely located between 0.1 and 30 THz - to broad research, and it was mostly limited to astronomy and high energy physics facilities. Over the recent years, numerous novel concepts on both the source and detector side have been proposed and successfully implemented to overcome this so-called THz gap. New technology has become available and paved the way for wide-spread experimental laboratory work and accompanying theoretical investigations. First application studies have emerged and in some cases even commercial development of the field of THz physics is on the rise. Despite these enormous progresses, a continuing demand for more efficient THz detectors still impels current technological research. Relatively low source powers are often a major limiting factor and the request for new detection concepts, their understanding and implementation, as well as the optimization on a device basis has been and still remains in place. One of these concepts is the use of field-effect transistors (FETs) high above their conventional cut-off frequencies as electronic THz detectors. The concept has been proposed in a number of theoretical publications by M. Dyakonov and M. Shur in the early 1990's, who pioneered to show that under certain boundary conditions, non-linear collective excitations of the charge carrier system of a two-dimensional electron gas (2DEG) by incident THz radiation can exhibit rectifying behaviour - a detection principle, which has become known as plasma wave or plasmonic mixing. Up until this day, the concept has been successfully implemented in many device realizations - most advanced in established silicon CMOS technology - and stands on the edge of becoming commercially available on a large scale. The main direction of the work presented in this thesis was the modeling and experimental characterization of antenna-coupled FETs for THz detection - termed TeraFETs in this and the author's previous works - which have been implemented in different material systems. The materials presented in this thesis are AlGaN/GaN HEMTs and graphene FETs. In a number of scientific collaborations, TeraFETs were designed based on a hydrodynamic transport model, fabricated in the respective materials, and characterized mainly in the lower THz frequency region from 0.2 to 1.2 THz. The theoretical description of the plasma wave mixing mechanism in TeraFETs, as initiated by Dyakonov and Shur, was based on a fluid-dynamic transport model for charge carriers in the transistor channel. The THz radiation induces propagating charge density oscillations (plasma waves) in the 2DEG, which via non-linear self-mixing cause rectification of the incident THz signals. Over the course of this work, it became evident in the on-going detector characterization experiments that this original theoretical model of the detection process widely applied in the respective literature does not suffice to describe some of the experimental findings in TeraFET detection signals. Thorough measurements showed signal contributions, which are identified in this work to be of thermoelectric origin arising from an inherent asymmetric local heating of charge carriers in the devices. Depending on the material, these contributions constituted a mere side effect to plasmonic detection (AlGaN/GaN) or even reached a comparable magnitude (graphene FETs). To include these effects in the detector model, the original reduced fluid-dynamic description was extended to a hydrodynamic transport model. The model yields at the current stage a reasonable qualitative agreement to the measured THz detection signals. This thesis presents the formulation of a hydrodynamic charge carrier transport model and its specific implementation in a circuit simulation tool. A second modeling aspect is that the transport equations cover only the intrinsic plasmonic detection process in the active gated part of the TeraFET's transistor channel. In order to model and simulate the behavior of real devices, extrinsic detector parts such as ungated channel regions, parasitic resistances and capacitances, integrated antenna impedance, and others must be considered. The implemented detector model allows to simulate THz detection in real devices with the above influences included. Besides presentation of the detector model, experimental THz characterization of the fabricated TeraFETs is presented in this work. Careful device design yielded record detection performance for detectors in both investigated materials. The respective results are shown and the experimental observations of the thermoelectric effect in TeraFETs are compared to modeling results. It is the goal of this work to provide a framework for further theoretical and experimental studies of the plasmonic and thermoelectric effect in TeraFETs, which could eventually lead to a new type of THz detectors particularly exploiting the thermoelectric effect to enhance the sensitivity of today's plasmonic TeraFETs.
Zur Unterstützung von Lehrkräften bei der Auswahl eines Sachunterrichtsschulbuchs im Hinblick auf die didaktische Aufbereitung physikalischer Themen wurde ein bereits bestehendes und in der Schweiz eingesetztes Schulbuchraster weiterentwickelt. Die ergänzenden Bewertungskriterien berücksichtigen, inwieweit die Schulbücher physikalische Inhalte in einer Weise präsentieren, dass a) häufige Präkonzepte der Schülerinnen und Schüler aufgegriffen, b) Inhalte strukturiert dargestellt werden, c) multiple externe Repräsentationen zum Einsatz kommen, d) Selbsterklärungen angeregt wie auch e) offene Schülerexperimente angeboten werden. Zudem sollten f) für die Lehrkräfte Zusatzmaterialen mit fachwissenschaftlichen und fachdidaktischen Erläuterungen zur Verfügungen stehen. Ergänzende Erläuterungen der Rasterkriterien sollen eine möglichst objektive Beurteilung unterstützen. Anhand dieses weiterentwickelten Rasters wurden exemplarisch die 2017 in Hessen zugelassenen Sachunterrichtsschulbücher analysiert.
The transverse momentum distributions of the strange and double-strange hyperon resonances (Σ(1385)±,Ξ(1530)0) produced in p–Pb collisions at √sNN = 5.02 TeV were measured in the rapidity range −0.5<yCMS<0 for event classes corresponding to different charged-particle multiplicity densities, ⟨dNch/dηlab⟩. The mean transverse momentum values are presented as a function of ⟨dNch/dηlab⟩, as well as a function of the particle masses and compared with previous results on hyperon production. The integrated yield ratios of excited to ground-state hyperons are constant as a function of ⟨dNch/dηlab⟩. The equivalent ratios to pions exhibit an increase with ⟨dNch/dηlab⟩, depending on their strangeness content.
The interaction of (quasi)particles with a periodic potential arises in various domains of science and engineering, such as solid-state physics, chemical physics, and communication theory. An attractive test ground to investigate this interaction is represented by superconductors with artificial pinning sites, where magnetic flux quanta (Abrikosov vortices) interact with the pinning potential U(r) = U(r + R) induced by a nanostructure. At a combination of microwave and dc currents, fluxons act as mobile probes of U(r): The ac component shakes the fluxons in the vicinity of their equilibrium points which are unequivocally determined by the local pinning force counterbalanced by the Lorentz force induced by the dc current, linked to the curvature of U(r) which can then be used for a successful fitting of the voltage responses. A good correlation of the deduced dependences U(r) with the cross sections of the nanostructures points to that pinning is primarily caused by vortex length reduction. Our findings pave a new route to a non-destructive evaluation of periodic pinning in superconductor thin films. The approach should also apply to a broad class of systems whose evolution in time can be described by the coherent motion of (quasi)particles in a periodic potential.
The description of quantized collective excitations stands as a landmark in the quantum theory of condensed matter. A prominent example occurs in conventional magnets, which support bosonic magnons—quantized harmonic fluctuations of the ordered spins. In striking contrast is the recent discovery that strongly spin-orbital-coupled magnets, such as α-RuCl3, may display a broad excitation continuum inconsistent with conventional magnons. Due to incomplete knowledge of the underlying interactions unraveling the nature of this continuum remains challenging. The most discussed explanation refers to a coherent continuum of fractional excitations analogous to the celebrated Kitaev spin liquid. Here, we present a more general scenario. We propose that the observed continuum represents incoherent excitations originating from strong magnetic anharmonicity that naturally occurs in such materials. This scenario fully explains the observed inelastic magnetic response of α-RuCl3 and reveals the presence of nontrivial excitations in such materials extending well beyond the Kitaev state.
In this work the flexibility requirements of a highly renewable European electricity network that has to cover fluctuations of wind and solar power generation on different temporal and spatial scales are studied. Cost optimal ways to do so are analysed that include optimal distribution of the infrastructure, large scale transmission, storage, and dispatchable generators. In order to examine these issues, a model of increasing sophistication is built, first considering different flexibility classes of conventional generation, then adding storage, before finally considering transmission to see the effects of each.
To conclude, in this work it was shown that slowly flexible base load generators can only be used in energy systems with renewable shares of less than 50%, independent of the expansion of an interconnecting transmission network within Europe. Furthermore, for a system with a dominant fraction of renewable generation, highly flexible generators are essentially the only necessary class of backup generators. The total backup capacity can only be decreased significantly if interconnecting transmission is allowed, clearly favouring a European-wide energy network. These results are independent of the complexity level of the cost assumptions used for the models. The use of storage technologies allows to reduce the required conventional backup capacity further. This highlights the importance of including additional technologies into the energy system that provide flexibility to balance fluctuations caused by the renewable energy sources. These technologies could for example be advanced energy storage systems, interconnecting transmission in the electricity network, and hydro power plants.
It was demonstrated that a cost optimal European electricity system with almost 100% renewable generation can have total system costs comparable to today's system cost. However, this requires a very large transmission grid expansion to nine times the line volume of the present-day system. Limiting transmission increases the system cost by up to a third, however, a compromise grid with four times today's line volume already locks in most of the cost benefits. Therefore, it is very clear that by increasing the pan-European network connectivity, a cost efficient inclusion of renewable energies can be achieved, which is strongly needed to reach current climate change prevention goals.
It was also shown that a similarly cost efficient, highly renewable European electricity system can be achieved that considers a wide range of additional policy constraints and plausible changes of economic parameters.
Gabor lenses were invented for focusing hadron beams by the electric field of a confined electron column. A homogenous magnetic field created by a solenoid confines electrons in transverse direction while a potential well created by a cylindrical electrode system confines them longitudinally.
In this thesis the investigation and characterization of a nonneutral electron plasma (NNP) in a Gabor lens with a toroidal magnetic confinement and a 30 degree-bent anode is presented. Motivated by fundamental research on NNPs in this special environment, diagnostic methods were investigated to characterize the plasma. As a non-invasive method a PCO camera is placed in front of the experimental setup. A ring of 31 photodiodes is used inside the plasma for light intensity and distribution measurements. The experimental data is evaluated and the following results will be presented.
This thesis investigates second-order relativistic hydrodynamics and transport coefficients in strongly correlated systems. Our focus is mainly on the physical conditions relevant to heavy-ion collisions, as well as compact dense stellar objects at nonzero temperatures and in strong magnetic fields.
Chapter 1 provides a brief introduction to the area of research covered by this thesis, specifically relativistic hydrodynamics and transport in hot and dense media, which occur in heavy-ion collisions and heated stellar matter.
In Chapter 2 we give a new formulation of second-order dissipative hydrodynamics for relativistic systems using Zubarev's non-equilibrium statistical operator approach. We first solve the quantum Liouville equation with an infinitesimal source term to construct a non-equilibrium statistical operator which is a non-local functional of the thermodynamic parameters and their space-time gradients. Exploiting then the gradient expansion of the statistical operator we derive transport equations for the shear stress tensor, the bulk viscous pressure and the flavour diffusion currents up to the second order in hydrodynamic gradients.
We show that the second-order corrections to the dissipative fluxes arise from (i) the quadratic terms of the Taylor expansion of the statistical operator; and (ii) the linear terms which are nonlocal in space and time. These non-local corrections generate finite relaxation time scales in the evolution of the dissipative quantities. We derive the most generic form of the transport equations which involve gradients of the dissipative fluxes, as well as products of two first-order quantities (i.e., either thermodynamic forces or dissipative fluxes). We then go on to express the first- and the second-order transport coefficients, which appear in these equations, via certain two- and three-point equilibrium correlation functions. Finally, we express the relaxation times for the dissipative fluxes via the frequency-derivatives of the corresponding first-order transport coefficients.
In Chapter 3 we compute the transport coefficients of quark matter in the strong coupling regime within the two-flavor Nambu-Jona-Lasinio model. We apply the Kubo-Zubarev formalism to obtain the thermal and the electrical conductivities as well as the shear and the bulk viscosities by evaluating the corresponding equilibrium two-point correlation functions at the leading order in the 1/N_c expansion. In this approximation the conductivities and the shear viscosity are given by single-loop skeleton diagrams, whereas the bulk viscosity includes an infinite geometrical series of multi-loop diagrams. The dispersive effects that lead to nonzero transport coefficients arise from quark-meson fluctuations above the Mott transition temperature T_M, where meson decay into two on-mass-shell quarks is kinematically allowed.
We find that the conductivities and the shear viscosity are decreasing functions of temperature and density above T_M. We also show that the Wiedemann-Franz law does not hold. The ratio of the shear viscosity to the entropy density is larger than unity close to the Mott temperature and approaches the AdS/CFT bound at higher temperatures. We conjecture on the basis of the uncertainty principle that the ratio of the thermal conductivity to the heat capacity per unit volume is bounded from below by 1/18.
The case of the bulk viscosity turns out to be special, because the multi-loop contributions dominate the single-loop contribution close to the Mott line in the case where the chiral symmetry is explicitly broken. We find that in this case only at high temperatures the one-loop contribution becomes dominant. The resulting bulk viscosity exceeds the shear viscosity close to the Mott temperature by factors 5-20 when multi-loop contributions are included. In the high-temperature domain the bulk viscosity is negligible compared to the shear viscosity. For practical applications we provide simple, but accurate fits to the transport coefficients, which can facilitate the implementation of our results in hydrodynamics codes.
In Chapter 4 we compute the electrical conductivity of finite temperature, strongly magnetized crust of a compact star which may be formed in the aftermath of a supernova explosion, binary neutron star merger, or during accretion processes in X-ray binaries. We focus on the temperature-density regime where plasma is in the liquid state and, therefore, the conductivity is dominated by the electron scattering off correlated nuclei. The dynamical screening of electron-ion interaction is implemented in terms of the polarization tensor computed in the hard-thermal-loop (HTL) effective field theory of QED plasma. The correlations of the background ionic component are accounted for via a structure factor derived from Monte Carlo simulations of one-component plasma.
With this input we solve the Boltzmann kinetic equation in relaxation time approximation taking into account the anisotropy of transport due to the magnetic field. The electrical conductivity tensor is studied numerically as a function of temperature, density, magnetic field and the crust composition in a broad parameter range. We find that the conductivity as a function of temperature attains a minimum at the transition from the degenerate to the nondegenerate regime of electrons. We also provide accurate fit formulas to our numerical results for three components of the conductivity tensor. In addition, we provide supplemental tables which can be used in dissipative magneto-hydrodynamics(MHD) simulations of warm compact stars.
We summarize our results and discuss the perspectives in Chapter 5.
The theory of strong interactions — Quantum Chromodynamics (QCD) — is well-defined mathematically. However, direct applications of this theory to experiment are rather limited due to significant technical obstacles. Even some general features of QCD remain unclear to date.
Hence, phenomenological input is important and needed for practical applications, e.g. for theoretical analysis of the heavy-ion collision experiments. In this thesis the role of hadronic interactions is studied in the hadron resonance gas (HRG) model — a popular model for the confined phase of QCD. The description of hadronic interactions is based on the famous van der Waals (VDW) equation and its quantum statistical generalization. While this is not the conventional choice for nuclear/hadronic physicspplications, the simplicity of the VDW approach makes it extremely useful.
In particular, this framework allows to include the two most basic ingredients of hadron-hadron interaction: the short-range repulsion, modeled by excluded-volume (EV) corrections, and the intermediate range attraction. The first part of the thesis considers just the repulsive EV interactions between hadrons. A hitherto unknown, but surprisingly strong sensitivity of the long known thermal fits to heavy-ion hadron yield data to the choice of hadron eigenvolumes is uncovered. It challenges the robustness of the chemical freeze-out temperature and baryochemical potential determination from the thermal fits. However, at the same time, the extracted value of the entropy per baryon is found to be a robust observable which depends weakly on this systematic uncertainty of the HRG model.
A Monte Carlo procedure to treat EV interactions in HRG is also introduced in this thesis. It allows to study simultaneous effects of EV and of exact charge conservation in HRG for the first time. Generalizations of the classical VDW equation are required for its applications in hadronic physics. he grand canonical ensemble (GCE) formulation of the classical VDW equation is presented. Remarkably, this important aspect of the VDW equation was not discovered before. The GCE formulation yields the analytic structure of the critical fluctuations, both in the vicinity of and far off the critical point. These critical fluctuations are presently actively being used as probes for the QCD critical point. Another extension is the hitherto undiscovered generalization of the VDW equation to include quantum Bose-Einstein and Fermi-Dirac statistics. It is performed for both single-component and multi-component fluids. The Fermi-Dirac VDW equation is applied for the first time. It is used to describe nucleons and basic properties of nuclear matter. The quantum statistical generalization of the VDW equation developed in this work is quite general, and can be applied for any fluid. Thus, its applications are not restricted to QCD physics, but may also find themselves in chemistry and/or industry. The quantum statistical VDW equation is used to describe baryonic interactions in full HRG. The VDW parameters $a$ and $b$ are fixed to the nuclear ground state and the predictions of the model are confronted with lattice QCD calculations. The inclusion of baryonic interactions leads to a qualitatively different behavior of the fluctuations of conserved charges in the crossover region. In many cases it resembles the lattice data. These results suggest that hadrons do not melt quickly with increasing temperature, as one could conclude on the basis of the common simple ideal HRG model. Calculations at finite chemical potentials show that the nuclear liquid-gas transition manifests itself by non-trivial fluctuations of the net baryon number in heavy ion collisions. In the final part of the thesis the pure glue initial scenario for high-energy hadron and heavy-ion collisions is explored. This scenario is shown not to spoil the existing agreement of the hadronic and electromagnetic observables description in Pb+Pb collisions at energies available at the CERN Large Hadron Collider. Hydrodynamic calculations suggest that collisions of small-sized nuclei at lower collision energies available at the BNL Relativistic Heavy Ion Collider are promising in the search for the traces of the chemically non-equilibrium gluon-dominated phase transition.
Im Weltall existieren hunderte sehr helle Objekte, die eine hohe konstante Leuchtkraft im Wellenlängenbereich von Gammastrahlung besitzen. Die konstante Leuchtkraft mancher dieser Objekte wird in regelmäßigen Abständen von starken Ausbrüchen, den sogenannten X-Ray-Bursts, unterbrochen. Hauptenergiequelle dieser X-RayBursts ist der „rapid-proton-capture“-Prozess (rp-Prozess). Dieser zeichnet sich durch eine Abfolge von (p,γ)-Reaktionen und β+-Zerfällen aus, die die charakteristischen Lichtkurven produzieren. Für viele am Prozess beteiligte Reaktionen ist der Q-Wert sehr klein, wodurch die Rate der einzelnen Reaktionen von den resonanten Einfängen in die ungebundenen Zustände dominiert wird. Die Unsicherheiten in der Beschreibung der Lichtkurve sind derzeit aufgrund fehlender kernphysikalischer Informationen von vielen am Prozess beteiligten Isotopen sehr groß. Sensitivitätsstudien zeigen, dass dabei die Unsicherheiten der 23Al(p,γ)24Si-Reaktion eine der größten Auswirkungen auf die Lichtkurve hat. Diese werden durch ungenaue und widersprüchliche Informationen zu den ungebundenen Zuständen im kurzlebigen 24Si hervorgerufen.
Um Informationen über die Kernstruktur von 24Si zu erhalten, wurde am National Superconducting Cyclotron Laboratory (NSCL), Michigan, USA, die 23Al(d,n)24Si Transferreaktion untersucht. Der in dieser Form erstmals umgesetzte Versuchsaufbau bestand aus einem Gammadetektor zur Messung der Übergangsenergien des produzierten 24Si, einem Neutronendetektor zur Messung der Winkelverteilung der emittierten Neutronen und einem Massensprektrometer zur Identifikation des produzierten Isotops. Mit diesem Aufbau, der eine Detektion der kompletten Kinematik der (d,nγ)-Reaktion ermöglichte, konnten folgende Erkentnisse gewonnen werden:
Aus der Energie der nachgewiesenen Gammas konnten die Übergänge zwischen den Kernniveaus von 24Si bestimmt und daraus die Energien der einzelnen Zustände ermittelt werden. Dabei konnte neben dem bereits bekannten gebundenen 2+-Zustand (in dieser Arbeit gemessen bei 1874 ± 2,9keV) und dem ungebundenen 2+-Zustand (3448,8 ± 4,6keV), erstmals ein weiterer ungebundener (4+,0+)-Zustand bei 3470,6 ± 6,2 keV beobachtet werden. Zusätzlich konnte die Diskrepanz, die bezüglich der Energie des ungebundenen 2+-Zustands aufgrund früherer Messungen bestand, beseitigt und die Energieunsicherheit reduziert werden.
Aus der Anzahl der nachgewiesenen Gammas konnten ebenfalls die (d,n)-Wirkungsquerschnitte in die einzelnen Zustände von 24Si bestimmt werden. Unter Verwendung der Ergebnisse von DWBA-Rechnungen konnte mithilfe dieser die spektroskopischen Faktoren berechnet werden. Für die angeregten Zustände musste dabei zwischen verschiedenen Drehimpulsüberträgen unterschieden werden. Mittels der Winkelverteilung der nachgewiesenen Neutronen konnte gezeigt werden, dass die Gewichtung anhand der theoretischen spektroskopischen Faktoren zur Berechnung der Anteile des jeweiligen Drehimpulsübertrags am gesamten Wirkungsquerschnitt für den entsprechenden Zustand gute Ergebnisse liefert. Für eine quantitative Bestimmung der spektroskopischen Faktoren der Zustände anhand der Neutronenwinkelverteilungen in 24Si war allerdings die Statistik zu gering. Für den Fall der deutlich häufiger beobachteten 22Mg(d,n)23Al-Reaktion konnte hingegen ein spektroskopischer Faktor für den 23Al-Grundzustand von 0,29 ± 0,04 bestimmt werden. Abschließend wurden die Auswirkungen der gewonnenen Erkenntnisse zur Kernstruktur von 24Si auf die Rate der 23Al(p,γ)-Reaktion untersucht. Dabei konnte aufgrund der besseren Energiebestimmung zum einen die Diskrepanz zwischen den Raten die auf Grundlage der beiden früheren Untersuchungen berechnet wurden und bis zu einem Faktor von 20 voneinander abweichen, beseitigt werden. Zum anderen konnte aufgrund der kleineren Unsicherheit in der Energiebestimmung der Fehlerbereich der Rate verkleinert werden. Die Untersuchungen zeigen, dass die Unsicherheit in der neuen Rate von der Ungenauigkeit der Massenbestimmung der beiden beteiligten Isotope und damit dem Q-Wert der Reaktion dominiert wird. Durch eine bessere Bestimmung des Q-Werts könnte die Unsicherheit in der Rate aufgrund der neuen experimentellen Ergebnisse auf ein Zehntel gesenkt werden.
Zur effizienten Beschleunigung von Ionen wird meist nach deren Erzeugung in einer Ionenquelle ein Radio Frequenz Quadrupol verwendet. Die vorliegende Dissertation befasst sich mit Entwicklung, Bau und Messung des Prototyps eines neuartigen Leiter-RFQs, der bei 325 MHz betrieben wird. Der Leiter-RFQ verfügt über ein neuartiges mechanisches Design und versucht die Vorteile der beiden vorrangig im Betrieb befindlichen RFQ Typen, des 4-Rod und 4-Vane RFQs, zu verbinden. Die physikalischen Parameter sind der Spezifikation des RFQs für den geplanten Protonenlinac (p-Linac) am FAIR-Projekt an der GSI Darmstadt entnommen. Darüber hinaus wird der aktuelle Planungs- und Simulationsstand eines modulierten Prototyps mit der vollen Länge von ca. 3,5 m zur Durchführung von Strahltests dargestellt.