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Studies and measurements of linear coupling and nonlinearities in hadron circular accelerators
(2006)
In this thesis a beam-based method has been developed to measure the strength and the polarity of corrector magnets (skew quadrupoles and sextupoles) in circular accelerators. The algorithm is based on the harmonic analysis (via FFT) of beam position monitor (BPM) data taken turn by turn from an accelerator in operation. It has been shown that, from the differences of the spectral line amplitudes between two consecutive BPMs, both the strength and the polarity of non-linear elements placed in between can be measured. The method has been successfully tested using existing BPM data from the SPS of CERN, since presently the SIS-18 is not equipped with the necessary hardware. The magnet strength of seven SPS extraction sextupoles was measured with a precision of about 10%. The polarities have been unambiguously measured. This method can be used to detect polarity errors and wrong power supply connections during machine commissioning, as well as for a continuous monitoring of the "nonlinearity budget" in superconducting machines. A second beam-based method has been studied for a fast measurement and correction of betatron coupling driven by skew quadrupole field errors and tilted focusing quadrupoles. Traditional methods usually require a time-consuming scan of the corrector magnets in order to minimize the coupling stop band |C|. In this thesis it has been shown how the same correction can be performed in a single machine cycle from the harmonic analysis of multi-BPM data. The method has been successfully applied to RHIC. It has been shown that the stop band |C| (also known in the American literature as Delta-Qmin) measured in a single machine cycle with the new algorithm is compatible with the value obtained by traditional methods. The measurement of the resonance phase Theta defines automatically the best corrector setting, which was found in agreement with the one obtained with a traditional scan. A third theoretical achievement is a new description of the betatron motion close to the difference resonance in presence of linear coupling. Compared to the matrix formalism the motion is parametrized as a function of the resonance driving term f1001 only (which is proven to be an observable), whereas making use of the matrix approach four parameters need to be measured. Formulae describing the exchange of RMS emittances when approaching the resonances have been already derived in the 70s in the smooth approximation. New formulae have been derived here making use of Lie algebra providing a better description of the emittance behavior. The emittance exchange curves are predicted by new formulae with excellent agreement with multi-particle simulations and the counter-intuitive emittance variation along the ring of the emittance is proven to be related to the variation of f1001. A new way to decouple the equations of motion and explicit expressions for the individual single particle invariants have been found. For the first time emittance exchange studies have been carried out in the SIS-18 of GSI. Transverse RMS emittances have been measured during 2005 from rest gas monitor (RGM) data. Crossing the linear coupling resonance, the transverse emittances exchange completely. It has been observed that this effect is reversible. Applications of this manipulation are: emittance equilibration under consideration for future operations of the SIS-18 as booster for the SIS-100; emittance transfer during multi-turn injection to improve the eficiency and to protect the injection septum in high intensity operations, by shifting part of the horizontal emittance into the vertical plane. The emittance exchange curves obtained experimentally have been compared with analytic formulae providing a fast measurement (in few machine cycles only) of the linear coupling stop band |C|. Technical problems prevented the use of the eight skew quadrupoles installed in the SIS-18 to compensate the linear coupling resonance. It has been observed that the emittance exchange curve is highly sensitive to the beam intensity. Multi-particle simulations with 2D PIC space-charge solver have been run to infer heuristic scaling laws able to quantify the observable stop band, to be used for the resonance compensation. The analysis of BPM and RGM data has been performed making use of new software applications developed for this purpose. The bpm2rdt code for the harmonic analysis of BPM data has been written and tested with real data. The software reads the BPM turn-by-turn data and the Twiss parameters. Then it performs the FFT of these data, finds the peaks of the Fourier spectra and infers the RDT fjklm, the strengths ^hjklm and the local terms lambda-jklm. All these observables are printed out together with the corresponding values of the model, computed from the nominal values of strengths and the Twiss parameters. From the FFT of dual-plane BPM data the linear optics (beta functions and phase advances Delta phi) at the corresponding location is also inferred. From the measurement of f1000, the linear coupling coeffcient C (amplitude and phase) is also computed. The code has been tested by using existing SPS data and new RHIC data. For the on-line analysis of RGM data the rgm2emitt code has been written. The application reads in input the raw data files from the RGM and the beam loss monitor (BLM) respectively, the latter created by the RGM on-line software itself. From the RGM data the transverse beam sizes and emittances are inferred and used together with the BLM data to compute the tune shift during the machine cycle.
I derive a general effective theory for hot and/or dense quark matter. After introducing general projection operators for hard and soft quark and gluon degrees of freedom, I explicitly compute the functional integral for the hard quark and gluon modes in the QCD partition function. Upon appropriate choices for the projection operators one recovers various well-known effective theories such as the Hard Thermal Loop/ Hard Dense Loop Effective Theories as well as the High Density Effective Theory by Hong and Schaefer. I then apply the effective theory to cold and dense quark matter and show how it can be utilized to simplify the weak-coupling solution of the color-superconducting gap equation. In general, one considers as relevant quark degrees of freedom those within a thin layer of width 2 Lambda_q around the Fermi surface and as relevant gluon degrees of freedom those with 3-momenta less than Lambda_gl. It turns out that it is necessary to choose Lambda_q << Lambda_gl, i.e., scattering of quarks along the Fermi surface is the dominant process. Moreover, this special choice of the two cutoff parameters Lambda_q and Lambda_gl facilitates the power-counting of the numerous contributions in the gap-equation. In addition, it is demonstrated that both the energy and the momentum dependence of the gap function has to be treated self-consistently in order to determine the imaginary part of the gap function. For quarks close to the Fermi surface the imaginary part is calculated explicitly and shown to be of sub-subleading order in the gap equation.
The focus of this thesis is on quantum Heisenberg magnets in low dimensions. We modify the method of spin-wave theory in order to address two distinct issues. In the first part we develop a variant of spin-wave theory for low-dimensional systems, where thermodynamic observables are calculated from the Gibbs free energy for fixed order parameter. We are able to go beyond linear spin-wave theory and systematically calculate two-loop correction to the free energy. We use our method to determine the low-temperature physics of Heisenberg ferromagnets in one, two and three spatial dimensions. In the second part of the thesis, we treat a two-dimensional Heisenberg antiferromagnet in the presence of a uniform external magnetic field. We determine the low-temperature behavior of the magnetization curve within spin-wave theory by taking the absence of the spontaneous staggered magnetization into account. Additionally, we perform quantum Monte Carlo simulations and subsequently show that numerical findings are qualitatively comparable to spin-wave results. Finally, we apply our method to an experimentally motivated case of the distorted honeycomb lattice in order to determine the strength of the exchange interactions.
In der vorliegenden Arbeit beschäftigen wir uns mit der Frage, wie ein Regler für ein hochdimensionales physikalisch/technisches System strukturiert und optimiert werden soll. Diesbezüglich untersuchen wir einen neuen Ansatz, welcher versucht, Regel-Mechanismen des ökonomischen Marktes und Lern-Prozesse mit in den Regler einzubauen. Um eine anschauliche Vorstellung von der Wirkung des Reglers zu erhalten, wenden wir diesen auf ein einfaches physikalisches Model an, eine an ihren Enden eingespannte eindimensionale Federkette. Wir implementieren das Model auf einem Rechner und simulieren den Einfluß des Regelverfahrens auf die Bewegung der Kette. Dabei beschränken wir uns auf den Grenzfall kleiner Amplituden, um das System im Rahmen einer näherungsweise linearen Dynamik beschreiben zu können. Mit Hilfe eines schwachen destabilisierenden Zusatzpotentials erreichen wir, daß die niedrigen Eigenmoden der schwingenden Kette instabil werden und die ausgestreckte Kette eine instabile Gleichgewichtslage darstellt. Wir stellen uns die Aufgabe, diese unter Verwendung des Reglers zu stabilisieren. Anhand des Modells untersuchen wir den Einfluß verschiedener Anfangsbedingungen der Kette, den Einfluß der Markt-Regelung, den Einfluß verschiedener Kommunikationsstrukturen und den Einfluß des Lernverfahrens auf die Wirksamkeit und die Robustheit des Regelprozesses. Als wichtigstes Ergebnis erkennen wir, daß die Regelung mit dem Markt robuster im Vergleich mit der Regelung ohne Markt ist, aber im allgemeinen einen höheren Regel-Energieaufwand aufweist. Untersuchungen anhand des Lernverfahrens ergeben, daß sich das Lernen der Markt- und der Kommunikationsstruktur kombinieren läßt und dadurch die Wirksamkeit der Regelung gegen über der Verwendung von nur einem der beiden Lern-Ansätze erhöht werden kann. Unsere Ergebnisse zeigen, daß sich das Markt-Konzept vollständig auf den gegebenen technischen Regelprozeß übertragen läßt. In der Diskussion der Ergebnisse führen wir die erhöhte Robustheit und den erhöhten Energieaufwand der Markt-Regelung auf eine indirekte, nichtlineare Kopplung der Regeleinheiten zurück, die der Markt-Mechanismus in den Regelprozeß einführt. Die Nichtlinearität bewirkt, daß die von dem Regler bestimmten Regelkräfte bei kleinen Kontrollfehlern relativ größer sind als bei großen Kontrollfehlern. Daduch ist der Energieaufwand der Markt-Regelung bei kleinen Kontrollfehlern gegenüber der Regelung ohne Markt erhöht. Der Regler ist damit in der Lage, die Kette auch bei dem Ausfall einer Regeleinheit zu stabilisieren, da ausreichend große Regelkräfte durch die verbleibenden Regeleinheiten ausgeübt werden. Die Kopplung von benachbarten Massenpunkten durch Federn unterstützt die Robustheit der Regelung in dem untersuchten Ketten-Modell, da die Kopplung dazu führt, daß die Massenpunkte eine zur instabilen Gleichgewichtslage rücktreibende Kraft erfahren und dadurch in den Bereich von kleinen Kontrollfehlern und relativ hohen Regelkräften gelangen. Am Ende der Diskussion gehen wir kurz auf mögliche Anwendungen der gewonnen Ergebnisse ein. Dabei haben wir besonders technische Regelprozesse im Sinne von Smart Matter (intelligente Bauteile) im Auge.
Im Rahmen der vorliegenden Arbeit wurde die Spindephasierung optisch angeregter itineranter Ladungsträger in magnetisch dotierten Volumenhalbleitern mit Methoden der zeitaufgelösten magneto-optischen Ultra-Kurzzeit-Spektroskopie untersucht und eine theoretische Beschreibung der Spindephasierung entwickelt, die ein hohes Maß an Übereinstimmung mit den experimentellen Ergebnissen aufweist. Beim untersuchten Material Cd1-xMnxTe handelt es sich um einen sog. magnetischen Halbleiter, der die elektronischen Eigenschaften eines Halbleiters mit den magnetischen Eigenschaften eines Paramagneten vereint. Bedingt durch die starke sp/d-Austauschwechselwirkung zwischen den Spins der lokalisierten magnetischen Ionen und denen der optisch angeregten itineranten Ladungsträger, kommt es zur Ausbildung vieler neuer, bisher unbekannter, aber auch zur Modifikation bereits bekannter Effekte. Die Wirkungsweise der sp/d-Austauschkopplung in magnetischen Halbleitern kann stark vereinfacht gesprochen als eine Art „Verstärker“ verstanden werden, der unter anderem zu einer Intensivierung all solcher Effekte führt, die durch Magnetfelder, seien sie externer oder interner Natur, bedingt sind. Durch diese starke Respons auf externe Magnetfelder kommt es in magnetischen Halbleitern zu einer starken Überhöhung der Zeeman-Aufspaltung, so daß eine getrennte Beobachtung der ansonsten entarteten Spinzustände möglich wird. Die Methode der Wahl zur Untersuchung der zeitlichen Entwicklung der energetisch aufgespaltenen Spinzustände ist die Detektion der zeitaufgelösten Spinquantenschwebungen der Ladungsträger, die das zeitaufgelöste Analogon zur Detektion des Hanle-Effektes in Gasen darstellt. Hierfür kam ein magneto-optischer Detektionsaufbau zum Einsatz, der es ermöglichte, die zeitliche Entwicklung der Komponenten der transienten Magnetisierungen der im Magnetfeld präzedierenden Ladungsträgerspins zu erfassen und so Rückschlüsse auf die Lebensdauer der angeregten Zustände zu schließen. Da die so bestimmten Dephasierungszeiten der detektierten Transienten der Spinquantenschwebungen eine starke Abhängigkeit von den externen Parametern wie der Temperatur, dem Magnetfeld und der magnetischen Dotierung aufweisen, war es ein Ziel dieser Arbeit, eine systematische Untersuchung der gefundenen Abhängigkeiten durchzuführen, um so eine möglichst breite Datenbasis für die weitere theoretische Untersuchung der gefundenen Ergebnisse zu schaffen. Im Zuge dieser Untersuchungen gelang uns unter anderem der erste experimentelle Nachweis der oszillatorischen Signaturen von kohärenten Lochspinquantenschwebungen in magnetisch dotierten Halbleitern. Obwohl magnetisch dotierte Halbleiter bereits seit mehr als 30 Jahren experimentell untersucht werden, konnten unsere experimentellen Befunde zur Spindephasierung optisch angeregter Ladungsträger durch keines der etablierten Modelle zur Beschreibung der Spindephasierung, sei es in magnetisch dotierten oder in undotierten Halbleitern, beschrieben werden. Aus diesem Grund wurde ausgehend vom Gedanken, daß lokale Fluktuationen der Magnetisierung der magnetischen Ionen einen starken Einfluß auf die Lebensdauer der itineranten Spins haben, ein neues Modell entwickelt. Dieses Modell beruht auf der Adaption einer Beschreibung der Spindephasierung, die im Rahmen von Kernresonanzexperimenten entwickelt wurde und der Orientierung der Störungen der Magnetisierung in bezug zur Orientierung der Spins der itineranten Ladungsträger besonders Rechnung trägt. Durch die konsequente Ableitung quantitativer Ausdrücke für die Stärke der Magnetisierungsfluktuationen unter Berücksichtigung quantenmechanischer Fluktuationen gelang es uns, eine einfache Beschreibung für die Spindephasierung optisch angeregter Elektronen und Löcher in magnetischen Halbleitern in Abhängigkeit von der Temperatur, dem Magnetfeld und der Mangan-Dotierung zu formulieren. Die im Rahmen unseres Modells berechneten Dephasierungszeiten weisen im Bereich geringer Mangan-Konzentrationen (x <4 %) ein hohes Maß an Übereinstimmung mit den experimentellen Daten auf und können die beobachteten Temperatur- und Magnetfeldabhängigkeiten sehr gut wiedergeben. Für noch höhere Konzentrationen der Mangan-Ionen treten zunehmend Abweichungen der berechneten Dephasierungszeiten von den experimentellen Daten auf, die allerdings immer noch eine qualitative Aussage über das Verhalten der Spindephasierung erlauben. So reproduziert unser Modell unter anderem den experimentell für alle Proben gefundenen, an sich nicht direkt einsichtigen Befund, zunehmender Spinlebenszeiten mit steigender Temperatur, der allgemein als "motional narrowing" bezeichnet wird. Da das von uns vorgestellte Modell ohne wahlfreie Parameter auskommt und die zur Berechnung der Spindephasierungszeiten notwendigen Größen der Literatur entnommen oder experimentell bestimmt werden können, ist der hohe Grad an Übereinstimmung mit den experimentellen Ergebnissen beachtlich. Weitere Verfeinerungen des Modells könnten zu einer weiteren Steigerung der Übereinstimmung vor allem im Bereich hoher Mangan-Konzentrationen führen, jedoch würde dies unserer Meinung nach den Rahmen des vorgestellten Modells sprengen. Wir verstehen unsere theoretische Untersuchung zur Spindephasierung vielmehr als einen Startpunkt für eine nun durchzuführende exakte quantenmechanische theoretische Untersuchung der Spindephasierung optisch angeregter Ladungsträger in magnetischen Halbleitern. Weitere Untersuchungen müssen nun klären, inwieweit das von uns für die Beschreibung der Spindephasierung in magnetisch dotierten CdTe-Volumenhalbleitern entwickelte Modell auf II-VI-Volumenhalbleiter allgemein und andere magnetisch dotierte Materialien wie z.B. magnetische III-V-Halbleiter vom Typ Ga1-xMnxAs übertragbar sind, die speziell im Hinblick auf ihre ferromagnetische Ordnung unter dem Einfluß der RKKY-Wechselwirkung und deren möglichen Einfluß auf die Spindephasierung von besonderem Interesse sind.
An alternative theoretical description of axial electron channeling in the multi-GeV region has been developed. We solve a kinetic equation to evaluate an electron distribution function in axially oriented single crystals. Based on the single-string model, the required matrix elements for radiation and scattering by lattice vibrations are calculated employing solutions of the Dirac equation in cylindrical coordinates. Results obtained for 150-GeV electrons propagating along the <110> axis of germanium are in good agreement with experimental observations.
The experimental cold-fission yields for the system 233U(nth, f) are analyzed as function of the effective total excitation energy (TXE). The nuclear level density effect is taken into account at higher TXE, in order to benefit by the lower experimental data uncertainty as well as to avoid the quantitative account of the level densities close to fragment ground states. In this way the odd-even staggering which appears in the yields extrapolated at zero excitation energy by using the level densities, vanishes. We conclude that the cold nuclear fragmentation theory including the dynamical model describes well the experimental data.
The components of the nuclear inertia tensor, functions of the separation distance R and of the radius of the light fragment R2, BRR(R,R2), BRR2(R,R2), and BR2R2(R,R2) are calculated within the Werner-Wheeler approximation, by using the parametrization of two intersected symmetric or asymmetric spheres. Analytical relationships are derived. When projected to a path R2=R2(R), the reduced mass is obtained at the touching point. The two one-dimensional parametrizations with R2=const, and the volume V2=const previously studied, are found to be particular cases of the present more general approach. Illustrations for the cold fission, cluster radioactivity, and α decay of 252Cf are given.
We have investigated the channeling process of charged particles in a bent crystal. Invoking simple assumptions we derive a criterion, which determines whether channeling occurs or not. We obtain the same criterion using the Dirac equation. It is shown that the centrifugal force acting on the particle in the bent crystal significantly alters the effective transverse potential. The cases of axial and planar channeling are considered. The channeling probability and the dechanneling probability due to tunneling of the particle under the barrier in the effective transverse potential are estimated. These probabilities depend on the specific scaling parameter characterizing the process. Using the quasiclassical theory of synchrotron radiation we have calculated the contribution to the radiation spectrum, which arises due to the curvature of the channel. This contribution becomes significant to TeV electrons or positrons. Some practical consequences of our results are briefly discussed.
A coplanar three body cluster model (two deformed fragments and an alpha particle) similar to the model used for the description of cold binary fission was employed for the description of cold (neutronless) alpha accompanied fission of 252Cf. No preformation factors were considered. The three body potential was computed with the help of a double folding potential generated by the M3Y-NN effective interaction and realistic fragment ground state deformations. From the minimum action principle, the alpha particle trajectory equations, the corresponding ternary barriers, and an approximate WKB expression for the barrier penetrability are obtained. The relative cold ternary yields were calculated as the ratio of the penetrability of a given ternary fragmentation and the sum of the penetrabilities of all possible cold ternary fragmentations. Different scenarios were considered depending on the trajectories of the fragments. It was shown that two regions of cold fragmentation exist, a deformed one corresponding to large fragment deformations and a spherical one around 132Sn, similarly to the case of the cold binary fission of 252Cf. We have shown that for the scenario corresponding to the Lagrange point, where all forces acting on the alpha particle are in equilibrium, the cold alpha ternary yields of 252Cf are strongly correlated with the cold binary yields of the daughter nucleus 248Cm into the same heavy fragments. For all other scenarios only the spherical splittings are favored. We concluded that due to the present available experimental data on cold alpha ternary yields only the Lagrange scenario could describe the cold alpha ternary fission of 252Cf.
For cold (neutronless) fission we consider an analytical model of quantum tunneling with dissipation through a barrier U(q) evaluated with a M3Y nucleon-nucleon force. We calculate the tunneling spectrum, i.e., the fission rate as a function of the total kinetic energy of the fragments. The theoretical results are compared with the experimental data obtained for the fine structure of two cold fission modes of 252Cf: 148Ba+104Mo and 146Ba+106Mo. Taking into account the dissipative coupling of the potential function U(q) and of the momentum p with all the other neglected coordinates, we obtain a remarkable agreement with the experimental data. We conclude that the cold fission process is a spontaneous decay with a spectrum determined by the shape of the barrier and an amplitude depending on the strength of the dissipative coupling.
We discuss the prospects for parity-nonconservation experiments with highly charged heavy ions. Energy levels and parity mixing for heavy ions with 2–5 electrons are calculated. We investigate two-photon transitions and the possibility of observing interference effects between weak-matrix elements and Stark matrix elements for periodic electric field configurations.
A first testing ground for QED in the combined presence of a strong Coulomb field and a strong magnetic field is provided by the precise measurement of the hyperfine structure splitting of hydrogenlike 209Bi. We present a complete calculation of the one-loop self-energy correction to the first-order hyperfine interaction for various nuclear charges. In the low-Z regime we almost perfectly agree with the Z alpha expansion, but for medium and high Z there is a substantial deviation.
We compute the vacuum polarization correction to the binding energy of nuclear matter in the Walecka model using a nonperturbative approach. We first study such a contribution as arising from a ground-state structure with baryon-antibaryon condensates. This yields the same results as obtained through the relativistic Hartree approximation of summing tadpole diagrams for the baryon propagator. Such a vacuum is then generalized to include quantum effects from meson fields through scalar-meson condensates which amounts to summing over a class of multiloop diagrams. The method is applied to study properties of nuclear matter and leads to a softer equation of state giving a lower value of the incompressibility than would be reached without quantum effects. The density-dependent effective sigma mass is also calculated including such vacuum polarization effects.
An investigation of the transition to delta matter is performed based on a relativistic mean field formulation of the nonlinear sigma and omega model. We demonstrate that in addition to the Delta-meson coupling, the occurrence of the baryon resonance isomer also depends on the nucleon-meson coupling. Our results show that for the favored phenomenological value of m* and K, the Delta isomer exists at baryon density ~ 2–3 p0 if beta=1.31 is adopted. For universal coupling of the nucleon and Delta, the Delta density at baryon density ~ 2–3 p0 and temperature ~ 0.4–0.5 fm-1 is about normal nuclear matter density, which is in accord with a recent experimental finding.
We study here hot nuclear matter in the quark meson coupling model which incorporates explicitly quark degrees of freedom, with quarks coupled to scalar and vector mesons. The equation of state of nuclear matter including the composite nature of the nucleons is calculated at finite temperatures. The calculations are done taking into account the medium-dependent bag constant. Nucleon properties at finite temperatures as calculated here are found to be appreciably different from the value at T=0.
We study the binary cold fission of 252Cf in the frame of a cluster model where the fragments are born to their respective ground states and interact via a double-folded potential with deformation effects taken into account up to multipolarity lambda=4. The preformation factors were neglected. In the case when the fragments are assumed to be spherical or with ground-state quadrupole deformation, the Q-value principle dictates the occurrence of a narrow region around the double magic 132Sn, like in the case of cluster radioactivity. When the hexadecupole deformation is turned on, an entire mass region of cold fission in the range 138–156 for the heavy fragment arise, in agreement with the experimental observations. This fact suggests that in the above-mentioned mass region, contrary to the usual cluster radioactivity where the daughter nucleus is always a neutron/proton (or both) closed shell or nearly closed shell spherical nucleus, the clusterization mechanism seems to be strongly influenced by the hexadecupole deformations rather than the Q value.
We investigate the structure of the potential energy surfaces of the superheavy nuclei 158258Fm100, 156264Hs108, 166278112, 184298114, and 172292120 within the framework of self-consistent nuclear models, i.e., the Skyrme-Hartree-Fock approach and the relativistic mean-field model. We compare results obtained with one representative parametrization of each model which is successful in describing superheavy nuclei. We find systematic changes as compared to the potential energy surfaces of heavy nuclei in the uranium region: there is no sufficiently stable fission isomer any more, the importance of triaxial configurations to lower the first barrier fades away, and asymmetric fission paths compete down to rather small deformation. Comparing the two models, it turns out that the relativistic mean-field model gives generally smaller fission barriers.
We calculate the asymptotic high-energy amplitude for electrons scattering at one ion, as well as at two colliding ions, by means of perturbation theory. We show that the interaction with one ion eikonalizes and that the interaction with two ions causally decouples. We are able to put previous results on perturbative grounds and propose further applications for the obtained rules for interactions on the light cone. We discuss the implications of the eikonal amplitude on the pair production probability in ultrarelativistic peripheral heavy-ion collisions. In this context the Weizsäcker-Williams method is shown to be exact in the ultrarelativistic limit, irrespective of the produced particles’ mass. A new equivalent single-photon distribution is derived, which correctly accounts for Coulomb distortions. The impact on single-photon induced processes is discussed.
We study the extrapolation of nuclear shell structure to the region of superheavy nuclei in self-consistent mean-field models—the Skyrme-Hartree-Fock approach and the relativistic mean-field model—using a large number of parametrizations which give similar results for stable nuclei but differ in detail. Results obtained with the folded-Yukawa potential which is widely used in macroscopic-macroscopic models are shown for comparison. We focus on differences in the isospin dependence of the spin-orbit interaction and the effective mass between the models and their influence on single-particle spectra. The predictive power of the mean-field models concerning single-particle spectra is discussed for the examples of 208Pb and the spin-orbit splittings of selected neutron and proton levels in 16O, 132Sn, and 208Pb. While all relativistic models give a reasonable description of spin-orbit splittings, all Skyrme interactions show a wrong trend with mass number. The spin-orbit splitting of heavy nuclei might be overestimated by 40%–80%, which exposes a fundamental deficiency of the current nonrelativistic models. In most cases the occurrence of spherical shell closures is found to be nucleon-number dependent. Spherical doubly magic superheavy nuclei are found at 184298114, 172292120, or 184310126 depending on the parametrization. The Z=114 proton shell closure, which is related to a large spin-orbit splitting of proton 2f states, is predicted only by forces which by far overestimate the proton spin-orbit splitting in 208Pb. The Z=120 and N=172 shell closures predicted by the relativistic models and some Skyrme interactions are found to be related to a central depression of the nuclear density distribution. This effect cannot appear in macroscopic-microscopic models or semiclassical approaches like the extended Thomas-Fermi-Strutinski integral approach which have a limited freedom for the density distribution only. In summary, our findings give a strong argument for 172292120 to be the next spherical doubly magic superheavy nucleus.
In der vorliegenden Arbeit wird die Kopplung von Bloch- und Zyklotron-Oszillationen in Halbleiterübergittern unter dem Einfluss eines elektrischen und magnetischen Feldes zeitaufgelöst-elektro-optisch untersucht. Hierbei hängen sowohl die Stärke der Bloch-Zyklotron-Kopplung als auch die Charakteristika der kohärenten Ladungsträgerbewegung sensitiv von der relativen Anordnung der äußeren Felder ab. Bei gekreuzter Feldanordnung wird der Kohärente Hall-Effekt beobachtet. Semiklassisch lässt sich die Ladungsträgerdynamik in diesem Fall mit der Bewegungsgleichung eines nicht getriebenen, ungedämpften Pendels beschreiben. Abhängig vom Verhältnis E/B der äußeren Feldstärken lassen sich zwei Bewegungsregime mit gegensätzlicher Feldabhängigkeit der Frequenz der Ladungsträgeroszillationen unterscheiden. Bei schiefer Feldanordnung kommt es durch die nichtlineare Kopplung der Bloch-Oszillation mit der Zyklotron-Oszillation in der Übergitterebene zu einer phasenempfindlichen Gleichrichtung der transienten Oszillationen entlang der Wachstumsrichtung, wobei man in Resonanz eine Überhöhung dieses selbstinduzierten Gleichstroms beobachtet. In Anlehnung an ein analoges Phänomen, das an Josephson-Kontakten beobachtet wird, sprechen wir hierbei vom Fiske-Effekt. Für die räumliche Auslenkung X("unendlich") entlang der Wachstumsrichtung nach Abklingen der Kohärenz kann im Rahmen einer analytischen semiklassischen Näherung ein geschlossener Ausdruck angegeben werden. Die zeitaufgelösten Experimente zur Bloch-Zyklotron-Kopplung werden an zwei GaAs/Al0,3Ga0,7As-Übergitterstrukturen mit unterschiedlicher Quantentopfbreite durchgeführt. Im Spezialfall der gekreuzten Feldanordnung wird der Kohärente Hall-Effekt anhand der Existenz zweier Bewegungsregime mit ihrem charakteristischen Frequenz- und Dephasierungsverhalten in Abhängigkeit der äußeren Felder nachgewiesen und die lineare Abhängigkeit des Magnetfeldes am Übergang zwischen den Bewegungsregimen vom elektrischen Feld gezeigt. Die gleichermaßen prognostizierte Zunahme der Intensität höherer harmonischer Moden der Ladungsträgeroszillationen in der Nähe des Übergangs wird jedoch in der elektro-optischen Respons nicht beobachtet, wenngleich die verwendeten elektro-optischen Messtechniken im Vergleich zur Terahertz-Emissionsspektroskopie zur Untersuchung des Übergangsbereichs und höher frequenter Oszillationen prinzipiell besser geeignet sein sollten. Hierbei bestehende Einschränkungen werden diskutiert. Der für den Fall der schiefen Feldanordnung vorhergesagte selbstinduzierte Gleichstrom manifestiert sich experimentell in einem resonanzartigen Verlauf des elektro-optischen Signals nach Abklingen der Oszillationen in Abhängigkeit des Magnetfeldes. Durch Vergleich mit dem analytisch hergeleiteten Ausdruck für die räumliche Auslenkung lassen sich hieraus die relevanten Dämpfungskonstanten abschätzen und durch iterative Anpassung bestimmen. Die bei schiefer Feldanordnung mittels elektro-optischer Spektroskopie gemessenen Signale weisen nach Abklingen der kohärenten Ladungsträgeroszillationen nur einen sehr schwachen Driftanteil auf. Eine schlüssige Erklärung für diese Beobachtung ergibt sich, wenn bei der Behandlung der Ladungsträgerdynamik die Impuls- und Energierelaxation des Bloch-Oszillators unterschieden werden und eine sehr kleine Energiedämpfung angenommen wird.
A calculation of the vacuum-polarization contribution to the hyperfine splitting for hydrogenlike atoms is presented. The extended nuclear charge distribution is taken into account. For the experimentally interesting case 209Bi82+ we predict a delta-lambda- -1.6 nm shift for the transition wavelength of the ground-state hyperfine splitting.
The electron-positron pairs observed in heavy-ion collisions at Gesellschaft für Schwerionen-forschung Darmstadt mbH have been interpreted as the decay products of yet unknown particles with masses around 1.8 MeV. The negative results of resonant Bhabha scattering experiments, however, do not support such an interpretation. Therefore we focus on a more complex decay scenario, where the e+e- lines result from a two-collision process. We discuss the induced decay of a metastable 1++ state into e+e- pairs. For most realizations of a 1++ state such a decay in leading order can only take place in the Coulomb field of a target atom. This fact has the attractive consequence that for such a state the Bhabha bounds are no longer valid. However, the absolute value of the e+e- production cross section turns out to be unacceptably small.
We investigate the possibility that high-energy photons are channeled, when passing through an oriented single crystal, due to Delbrück scattering. For this purpose the exact electron propagator for the single-string model is constructed. Starting from a separation of variables, we solve the Dirac equation for a cylindrical electrostatic potential. The propagator for such external fields is constructed from solutions of the radial Dirac equation. This propagator is applied to a calculation of the S matrix for Delbrück scattering. We specify the conditions under which photon channeling takes place. Unfortunately these conditions are only matched for a very small fraction of those photons being produced by channeled electrons.
We investigate the influence of nuclear masses, radii, and interaction potentials on 12C radioactivity of 114the best representative of a new island of cluster emitters leading to daughter nuclei around the doubly magic 100Sn. Three different models are considered: one derived by Blendowske, Fliessbach, and Walliser (BFW) from the many-body theory of alpha decay, as well as our analytical (ASAF) and numerical (NuSAF) superasymmetric fission models. A Q value larger by 1 MeV or an ASAF potential barrier reduced by 3% are producing a half-life shorter by 2 orders of magnitude. A similar effect can be obtained within BFW and NuSAF by a decrease of the action integral with less than 10% and 5%, respectively. By increasing the radius constant within ASAF or BFW models by 10%, the half-life becomes shorter by 3 orders of magnitude.
The properties of nuclear matter are studied in the framework of quantum hadrodynamics. Assuming an ω-meson field, periodic in space, a self-consistent set of equations is derived in the mean-field approximation for the description of nucleons interacting via σ-meson and ω-meson fields. Solutions of these self-consistent equations have been found: The baryon density is constant in space, however, the baryon current density is periodic. This high density phase of nuclear matter can be produced by anisotropic external pressure, occurring, e.g., in relativistic heavy ion reactions. The self-consistent fields developing beyond the instability limit have a special screw symmetry. In the presence of such an ω field, the energy spectrum of the relativistic nucleons exhibits allowed and forbidden bands, similar to the energy spectrum of the electrons in solids.
We investigate the production of heavy quarks in continuum and bound states in nuclear collisions. Creation rates for free bb and tt quark pairs and for bottomonium and toponium in the ground state are computed at energies of the BNL Relativistic Heavy Ion Collider, CERN Large Hadron Collider (LHC), and Superconducting Super Collider. Central and peripheral heavy-ion collisions are discussed. For top-quark creation we assumed a mass range of 90≤mt≤250 GeV. The creation rate for top quarks in peripheral collisions is estimated to be by a factor 40 to 130 smaller compared with corresponding central collisions. For mt=130 GeV we calculated a creation rate of about 4760 top-quark pairs per day at the LHC (3.5 TeV/nucleon) for Pb-Pb collisions.
We discuss the multiplicity distribution of electron-positron pairs created in the strong electromagnetic fields of ultrarelativistic heavy-ion transits. Based on nonperturbative expressions for the N-pair creation amplitudes, the Poisson distribution is derived by neglecting interference terms. The source of unitarity violation is identified in the vacuum-to-vacuum amplitude, and a perturbative expression for the mean number of pairs is given.
The Gottfried sum-rule violation reported by the New Muon Collaboration was interpreted as an indication for a flavor asymmetry of the sea quark in the nucleon. We investigate the alternative possibility that isospin symmetry between the proton and the neutron is breaking. We examine systematically the consequences of this possibility for several processes, namely, neutrino deep inelastic scattering, the charged pion Drell-Yan process, the proton Drell-Yan process, and semi-inclusive deep inelastic scattering, and conclude that a decision between the two alternative explanations is possible.
A new region of proton-rich parent nuclei decaying by spontaneous cluster emission with a measurable branching ratio relative to alpha decay is predicted within the analytical superasymmetric fission model. After a brief presentation of the model and of the seven mass tables used to calculate the released energy, the obtained results are discussed. Measurable half-lives and branching ratios are estimated for 12C, 16O, 28Si, and other cluster radioactivities of some nuclides having proton and neutron numbers in the range Z=56–64 and N=58–72. Such nuclei far from stability could be produced in reactions induced by radioactive beams.
Ionization, pair creation, and electron excitations in relativistic heavy-ion collisions are investigated in the framework of the coupled-channel formalism. Collisions between heavy projectiles and Pb82+ are considered for various bombarding energies in the region E=500 up to 2000 MeV/u. Useful symmetry relations for the matrix elements are derived and the influence of gauge transformations onto the coupled-channel equations is explored.
Using relativistic Green’s-function techniques we examined single-electron excitations from the occupied Dirac sea in the presence of strong external fields. The energies of these excited states are determined taking into account the electron-electron interaction. We also evaluate relativistic transition strengths incorporating retardation, which represents a direct measure of correlation effects. The shifts in excitation energies are computed to be lower than 0.5%, while the correlated transition strengths never deviate by more than 10% from their bare values. A major conclusion is that we found no evidence for collectivity in the electron-positron field around heavy and superheavy nuclei.
A method is presented to define unique continuum states for the two-center Dirac Hamiltonian. In the spherical limit these states become the familiar angular-momentum eigenstates of the radial Coulomb potential. The different states for a fixed total energy ‖E‖>m may be distinguished by considering the asymptotic spin-angular distribution of states with unique scattering phases. The first numerical solutions of the two-center Dirac equation for continuum states are presented.
We present calculations for the impact-parameter dependence of K-shell ionization rates in p¯-Cu and in p¯-Ag collisions at various projectile energies. We show that the effect of the attractive Coulomb potential on the Rutherford trajectory and the antibinding effect caused by the negative charge of the antiproton result in a considerable increase of the ionization probability. Total ionization cross sections for proton and antiproton projectiles are compared with each other and with experimental ionization cross sections for protons.
Positron creation in crossed-beam collisions of high-energy, fully stripped heavy ions is investigated within the coupled-channel formalism. In comparison with fixed-target collisions of highly stripped heavy-ion projectiles positron production probabilities are enhanced by more than one order of magnitude. The increase results from the possibility to excite electrons from the negative energy continuum into all bound states. The positron spectrum is shifted towards higher energies because of the absence of electron screening. Rutherford scattering as well as nuclear collisions with time delay are investigated. We also discuss the filling of empty bound states by electrons from pair-production processes.
We study a relativistic model of the nucleus consisting of nucleons coupled to mesonic degrees of freedom via an effective Lagrangian whose parameters are determined by a fit to selected nuclear ground-state data. We find that the model allows a very good description of nuclear ground-state properties. Because of the relativistic nature of the model, the spin properties are uniquely fixed. We discuss variations of the parametrization and of the data which suggest that the present fit has exhausted the limits of the mean-field approximation, and discuss extensions which go beyond the mean field.
We investigate the influence of additional nonlinear terms in the Dirac Lagrangian on strongly bound electron states in heavy and superheavy atoms. Upper bounds for the coupling constants are deduced by comparison with precision spectroscopy data in QED. We demonstrate that nonlinear interactions may cause significant modifications of electron binding energies in superheavy quasiatomic systems which would not be visible in ordinary atomic-physics measurements.
We calculate angular correlations between coincident electron-positron pairs emitted in heavy-ion collisions with nuclear time delay. Special attention is directed to a comparison of supercritical and subcritical systems, where angular correlations of pairs produced in collisions of bare U nuclei are found to alter their sign for nuclear delay times of the order of 2 × 10-21 s. This effect is shown to occur exclusively in supercritical systems, where spontaneous positron creation is active.
Parity mixing of electron states should be extremely strong for heliumlike uranium. We calculate its size and discuss whether it could be determined experimentally. We analyze one specific scheme for such an experiment. The required laser intensities for two-photon spectroscopy of the 23P0–2 1S0level splitting is of the order of 1017 W/cm2. A determination of parity mixing would require at least 1021 W/cm2.
The magnetic dipole scattering of neutrinos by the electrostatic potentials of single atoms as well as crystals is investigated. It is shown that scattering by a rigid cubic lattice can amplify the neutrino-atom cross section by a factor of N1/3, N being the number of scatterers. However, comparing the results with typical weak-interaction cross sections, the effect seems to be not observable in experiment.
The angular distribution of electrons and positrons emitted in internal pair conversion is calculated. Coulomb-distorted waves are used as electron wave functions. Nuclear transitions of various multipolarities L>0 and of magnetic (ML) and of electric (EL) type are considered as well as E0 conversion. Analytical expressions for the angular correlation are derived, which are evaluated numerically assuming a finite extension of the nucleus and, for the EL and ML conversion, also in the point-nucleus approximation. The calculated angular correlations are compared with results obtained within the Born approximation and, for the E0 case, with experimental data.
We consider the contribution of nuclear polarization to the Lamb shift of K- and L-shell electrons in heavy atoms and quasiatoms. Our formal approach is based on the concept of effective photon propagators with nuclear-polarization insertions treating effects of nuclear polarization on the same footing as usual QED radiative corrections. We explicitly derive the modification of the photon propagator for various collective nuclear excitations and calculate the corresponding effective self-energy shift perturbatively. The energy shift of the 1s1/2 state in 92238U due to virtual excitation of nuclear rotational states is shown to be a considerable correction for atomic high-precision experiments. In contrast to this, nuclear-polarization effects are of minor importance for Lamb-shift studies in 82208Pb.
The phase structure of the scalar field theory with arbitrary powers of the gradient operator and a local non-analytic potential is investigated by the help of the RG in Euclidean space. The RG equation for the generating function of the derivative part of the action is derived. Infinitely many non-trivial fixed points of the RG transformations are found. The corresponding effective actions are unbounded from below and do probably not exhibit any particle content. Therefore they do not provide physically sensible theories.
The molecular particle-core model is applied to the scattering of 13C on 13C. The model divides the 13C+ 13C system into two 12C cores and two valence neutrons. The valence neutrons are described with molecular eigenfunctions of the symmetric two-center shell model. Coupled channel calculations are carried out for the inelastic single and mutual excitation of the first (1/2+ state of 13C and the neutron transfer to the 12C+14C system. The results reproduce the experimental data. The analysis of the S matrix shows that the gross structure of the transfer excitation function is related to resonances in the relative motion of the elastic and transfer channels.
We discuss the possibility that nuclei with very large baryon numbers can exist in the form of large quark blobs in their ground states. A calculation based on the picture of quark bags shows that, in principle, the appearance of such exotic nuclear states in present laboratory experiments cannot be excluded. Some speculations in connection with the recently observed anomalous positron production in heavy-ion experiments are presented.
We present a mechanism for the separation of strangeness from antistrangeness in the deconfinement transition. For a net strangeness of zero in the total system, the population of s quarks is greatly enriched in the quark-gluon plasma, while the s¯ quarks drift into the hadronic phase. This separation could result in ‘‘strangelet’’ formation, i.e., metastable blobs of strange-quark matter, which could serve as a unique signature for quark-gluon plasma formation in heavy-ion collisions. PACS: 25.70.Np, 12.38.Mh
If the local color symmetry in a quark-gluon matter is broken, the expectation value of the gluon field 〈Aμa(x)〉 may be different from zero. Such a gluon-condensed phase has been found in mean field approximation. The gluon-condensed phase is characterized by a static, periodic chromomagnetic field, which is coupled to a periodic spin-color density distribution of quarks and antiquarks. Transitions of first and second order type have been found between the gluon-condensed and normal phases, the latter characterized by the vanishing value of the mean gluon field.
We formulate a group-theoretical projection technique for the quantum-statistical description of systems with exactly conserved charges corresponding to local non-Abelian gauge symmetries. The formalism is specified for SU(N) internal symmetry and a partition function related to a mixed canonical–grand-canonical ensemble is defined. Its perturbation expansion is derived, and we point out potential applications. We also study single-particle Green’s functions for the calculation of mixed ensemble averages with the help of a generalized Wick’s theorem and find that a connected-graphs expansion is impossible.