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This thesis aims to investigate the properties of hadronic matter by analyzing fluctuations of conserved charges. A transport model (SMASH) is used for these studies to achieve this. The first part of this thesis focuses on examining transport coefficients, specifically the diffusion coefficients of conserved charges and the shear viscosity. The second part investigates equal-time correlations of particle numbers in the form of cumulants. The last chapter studies different aspects of the isobar collision systems Ru and Zr.
As a first step, the hadronic medium and interactions between its constituents are introduced, and simultaneously, their impact on transport coefficients is investigated. The methodology is verified by comparing the results of SMASH with Chapman-Enskog calculations, followed by examining 3-to-1 multi-particle reactions, revealing their influence on shear viscosity and electrical diffusion. The analysis of the full hadron gas considers angle-dependent cross-sections and additional elastic cross-sections via the AQM description, showing significant impacts on transport coefficients. The dependency on the number of degrees of freedom is explored, with noticeable effects on diffusion coefficients but a smaller influence on the shear viscosity. At non-zero baryon chemical potential, the diffusion coefficients are strongly influenced, while the shear viscosity remains unaffected. Overall, the study underscores the importance of individual cross-sections and the modeling of interactions on transport coefficients.
The following chapter explores fluctuations of conserved charges, crucial for understanding phase transitions in heavy-ion collision from the quark-gluon plasma to the hadronic phase. Using SMASH, the impact of global charge conservation on particle number cumulants in subvolumes of boxes simulating infinite matter is studied. Comparisons with simpler systems highlights the influence of hadronic interactions on cumulants, especially via charge annihilation processes and the results from SMASH shows agreement with analytical calculations. Calculations at finite baryon chemical potential reveals a transition from a Poisson to Skellam distribution within the net proton cumulants. It is shown that an unfolding procedure to obtain the net baryon fluctuations from the net proton ones deviates from the actual net baryon result, particularly in larger volumes. Finally, net proton correlations at vanishing baryon chemical potential align with ALICE measurements and the net proton cumulants are unaffected by deuteron formation.
In the next step, the goal is to investigate critical fluctuations in the hadronic medium. Therefore, the hadronic system is initialized with critical equilibrium fluctuations by coupling the hadron resonance gas with the 3D Ising model. The single-particle probability distributions are derived from the principle of maximum entropy. Evolving these distributions in SMASH, their development in an expanding sphere adjusted to experimental conditions can be analyzed. It reveals resonance decay and formations as the primary source that affects the particle cumulants. Because of isospin randomization processes, critical fluctuations are better preserved in net nucleon numbers. However, for the strongest coupling investigated in this work, correlations of the critical field are still present in the final state of the evolution in the net proton fluctuations. Examining cumulant dependence on rapidity windows shows a non-monotonic trend.
In the third part, collisions involving the isobars Ru and Zr are studied at a center-of-mass energy of 200 GeV. Initially, SMASH is used to study the initial conditions to hydrodynamical simulations, emphasizing the importance of the nuclear structure of isobars on the geometry of the collision area. It is found that the deformation parameters notably influence the initial state. Correlations between nucleon-nucleon pairs on eccentricity fluctuations yield no significant effect. Subsequently, the hydrodynamic model vHLLE evolves the previously explored initial conditions and for the transition between the hydrodynamic and kinetic descriptions, the Cooper-Frye formula is used. Usage of the canonical ensemble ensures the exact conservation of the conserved charges B, Q, and S. The neutron skin effect, which changes the charge distribution within Ru nuclei, is additionally considered. Fluctuations are assessed, revealing suppression in large rapidity windows due to global charge conservation. The hadronic phase modifies fluctuations of net pions, net kaons, and net protons via annihilation processes, yet fluctuations remain unaffected by the neutron skin effect.
Die künstliche elektrische Stimulation bietet oftmals die einzige Möglichkeit, nicht vorhandene bzw. verloren gegangene motorische sowie sensorische Aktivitäten in gewissem Umfang wieder herzustellen. Im Falle von tauben Patienten wird zur Erlangung von Hörempfindungen die elektrische Stimulation des peripheren auditorischen Systems mit Hilfe von Cochlea- oder Hirnstammimplantaten standardmäßig eingesetzt. Es ist dabei notwendig, natürliche neuronale Entladungsmuster durch die elektrisch evozierten Entladungsmuster nachzubilden. Bei einkanaligen Systemen kann nur die Zeitstruktur des Signals dargeboten werden. Mehrkanalige Systeme bieten hier noch zusätzlich die Möglichkeit auch örtlich selektiv bestimmte Nervenfasergruppen zu stimulieren und damit die Ortsstruktur in den Entladungsmustern zu repräsentieren. So hat es sich gezeigt, dass die Sprachverständlichkeit durch Verwendung von Mehrkanal-Elektroden verbessert werden kann. Grundvoraussetzung hierfür ist die Optimierung der Kanalseparation durch Kleinst-Vielkanalelektroden und der Wahl einer optimalen Codierstrategie des Signals.
Die Codierstrategie ist abhängig von dem jeweiligen spezifischen Einsatzbereich. So gaben z.B. schon Clopton und Spelman (1995) zu bedenken, dass die als selektiv berechnete tripolare (S3) Konfiguration nur für einen bestimmten Stimulationsstrombereich gültig ist. Hinzu kommt es bei simultaner Verwendung benachbarter Kanäle zu schmerzhaften Lautheitssummationen. Ursache hierfür sind einerseits die Überlagerung der durch die Elektroden stimulierten neuronalen Bereiche und andererseits die Wechselwirkungen von Strömen benachbarter Elektrodenkanäle. Diese Effekte führen nicht nur zu einer Verringerung der räumlichen Stimulationsauflösung, sondern auch zu einer Einschränkung der exakten Abbildung der Zeitstruktur innerhalb der einzelnen Stimulationskanäle.
Die Techniken und Grundlagen der elektrischen Stimulation von neuronalem Gewebe mit Kleinst-Vielkanalelektroden sind bisher kaum untersucht worden. Ziel dieser Arbeit war es, ein mathematisches Modell zu implementieren und Qualitätsparameter zu definieren, mit deren Hilfe die Verteilung des elektrischen Feldes und die daraus resultierende neuronale Erregung beschrieben und optimiert werden kann. Zur Verifizierung des Modells sollten Methoden und Techniken entwickelt werden, die eine hochauflösende Abtastung der elektrischen Felder und Messung der neuronalen Daten innerhalb eines Messsystems ermöglichen.
Bei der neuronalen Stimulation mit Kleinst-Vielkanalelektroden ergibt sich eine Reihe von Problemen grundsätzlicher Art. So werden bei elektrodenferner Stimulation größere Stimulationsströme benötigt als bei elektrodennaher Stimulation, wobei für den Strombedarf die Stimulationskonfiguration eine entscheidende Rolle spielt: Der S1 Stimulationsmodus benötigt weniger Strom zur Erreichung großer Stimulationstiefen als der S2 Stimulationsmodus. Der größte Strom wird mit zunehmendem Elektrodenabstand gleichermaßen von dem S3 und S7 Stimulationsmodus benötigt. Gleichzeitig verfügen Kleinst-Vielkanalelektroden bauartbedingt aber nur über kleine Elektrodenkontaktoberflächen und lassen daher auf Grund der kritischen Feldstärke nur geringe Stimulationsströme zu.
Ein weiteres Problem besteht bei diesen Kleinst-Elektrodendimensionen in der konkreten Lage der Neurone an denen eine neuronale Erregung evoziert wird. Die Dimension der Kleinst-Vielkanalelektroden liegt bei einem Elektrodenkanalkontaktdurchmesser von 70 µm bereits in der Größenordnung der zu stimulierenden Neurone mit einem Durchmesser von 10 bis 15 µm. Dies macht sich bei den Messungen besonders dann deutlich bemerkbar, wenn nicht der Stimulationsstrom die Größe des überschwelligen Bereichs modelliert, sondern wenn der Elektrodenkanalabstand durch die Wahl der entsprechenden Elektrodenkanäle verändert wird. Hier weisen zwar die meisten neuronalen Antworten noch in die sich aus dem Modell ergebende Richtung, jedoch kommt es zu einer höheren Streuung der Ergebnisse als bei Messungen mit der Folienelektrode, die eine Kontaktfläche von 170 µm besitzt.
Es gibt also eine Reihe von begrenzenden Faktoren bei der optimalen Dimensionierung der Stimulationselektrode, die sowohl abhängig von der physiologischen Topologie ist als auch von den eingesetzten Stimulationskonfigurationen. Es ist also zur Stimulation die Wahl der optimalen Codierstrategie und die richtige Dimensionierung der Stimulationselektrode sowie der Elektrodenkanalabstände von entscheidender Bedeutung.
Die neuronalen Messungen wurden erstmalig für diese Fragestellung am Hirnschnitt durchgeführt, da sie, im Gegensatz zu in-vivo Versuchen, eine exakte Positionierung der Elektroden auf dem Hirnschnitt unter Sichtkontrolle durch das Mikroskop erlauben. Es wurden aus den neuronalen Messungen die Amplituden und Latenzen der exzitatorischen postsynaptischen Potenziale (EPSP) sowie der Feldpotenziale ausgewertet.
Der Versuchsaufbau macht es möglich, die Potenzialfelder mit genau den Konfigurationen abzutasten, mit denen auch die neuronalen Messungen des Hirnschnittes durchgeführt wurden. Das implementierte Programm zur Berechnung der Feldverteilung besitzt zum Messprogramm ein Interface, so dass es möglich ist, die Einstellungen des Experimentes, wie Stimulationskonfigurationen, Abtastraster des Feldes und die Koordinaten des Messraums, in der Modellrechnung zu verwenden. Somit ist ein direktes Vergleichen zwischen Messung und Berechnung möglich. In nachfolgenden Arbeiten können die vorliegenden Ergebnisse als Grundlage für in-vivo Versuche eingesetzt werden.
Zur Durchführung der Messungen wurden sehr kleine Elektroden aus eigener Herstellung verwendet und es wurden uns freundlicherweise neu entwickelte Folienelektroden des Fraunhofer Instituts St. Ingbert zur Verfügung gestellt. Die Größe der verwendeten Kleinst-Vielkanalelektroden aus eigener Herstellung lag um ca. eine Zehnerpotenz unter den aktuell eingesetzten Elektrodentypen und ist speziell für den direkten Kontakt zwischen Elektrode und Gewebe konzipiert. Dies entspricht dem typischen Einsatzbereich von Hirnstammimplantaten. Dies ist auch notwendig, um eine maximale räumliche Separation der erzeugten Felder zu ermöglichen. Außerdem erlaubte das Elektrodendesign auf Grund der hohen Anzahl der Elektrodenkanäle und durch variieren der Konfigurationen die Feldrichtung zu bestimmen, ohne die Elektrode neu auf den Hirnschnitt aufsetzen zu müssen.
Der in dieser Arbeit implementierte Algorithmus zur Berechnung der Feldverteilungen und die eingeführten Qualitätsparameter erlauben, die unterschiedlichen Stimulationskonfigurationen miteinander zu vergleichen und zu optimieren. Die Ergebnisse aus diesen Modellrechnungen wurden sowohl mit den Messungen der elektrischen Felder als auch mit den Ergebnissen aus den neuronalen Antworten verglichen.
Der im Rahmen dieser Arbeit erstellte Versuchsaufbau bestand aus einer über mehrere Mikromanipulatoren getriebene mikrometergenaue Positioniereinrichtung. Es konnten sowohl die Stimulationselektrode als auch die Elektrode zur Aufzeichnung der neuronalen Daten gesteuert werden. Die Steuerung des gesamten Setup, d.h. die Positionierung, die Aufzeichnung der neuronalen Daten und die Generierung der Stimulationsmuster wurde über den zentralen Messrechner durch ein hierfür entwickeltes Computerprogramm gesteuert. Die Versuche wurden über ein inverses Mikroskop durch eine CCD-Kamera aufgezeichnet.
Der entscheidende Vorteil des in dieser Arbeit gewählten Modellansatzes besteht in der grundsätzlichen Beschreibung der Feldverteilung bei vielkanaliger Stimulation, so dass diese auch auf andere Elektrodenformen bzw. Konfigurationen und Dimensionen übertragbar ist. Es lassen sich so den verschiedenen Konfigurationen nach bestimmten Qualitätskriterien bewerten und an die jeweilige Zielrichtung der Stimulation anpassen. Die berechneten Felder konnten erfolgreich in der Messeinrichtung generiert und nachgemessen werden. Außerdem ist es gelungen, differenzierte neuronale Aktivitäten auszuwerten, welche die Aussagen des Modells abstützen.
The core of this work is represented by the investigation of the chiral phase transition, using Monte Carlo simulations and unimproved staggered fermions, both in the weak and strong coupling regimes of Quantum Chromodynamics. Based on recent results from Monte Carlo simulations, both using unimproved staggered fermions and Wilson fermions, the chiral phase transition in the continuum and chiral limit shows compatibility with a second-order phase transition for Nf (number of flavours) in range [2:7], at zero baryon chemical potential. This achievement relies on the analytic continuation of Nf to non-integer values on the lattice, which allows to make use of extrapolation techniques to the chiral limit, where simulations are not possible. Furthermore, these results provide a resolution to the ambiguous scenario for Nf = 2 in the chiral limt. The first part of this thesis is devoted to the investigation of the chiral phase transition when a non-zero imaginary baryon chemical potential is involved, whose value corresponds to the 81% of the Roberge-Weiss one. Using the same extrapolation techniques aforementioned, the order of the chiral phase transition in the continuum and chiral limit shows compatibility with a second-order phase transition for Nf in range [2:6], highlighting a lack of dependence of the order of the chiral phase transition on the imaginary baryon chemical potential value. The second part of this thesis is about the study of the extension of the first-order chiral region in the strong coupling regime, at zero baryon chemical potential. Using Monte Carlo techniques, this can be done by investigating the Z2 boundary on a coarse lattice, whose temporal extent reads Nt = 2, and simulations are realised for Nf = 4, 8. The results in the weak coupling regime show, for $Nt = 8, 6, 4 and fixed Nf value, an inflating first-order chiral region. As in the strong coupling limit a second-order chiral phase transition is expected, the first-order chiral region has to shrink as the strong coupling regime is approached, resulting in a non-monotonic behaviour of the Z2 boundary. For Nf = 8, a critical mass on the Z2 boundary has been obtained, confirming the expected non-monotonic behaviour. For Nf = 4 the results do not provide a unique conclusion: Either a Z2 boundary at extremely low bare quark mass or a second-order chiral phase transition in the O(2) universality class in the chiral limit can take place. In addition to the two main topics, the performances of the second-order minimum norm integrator (2MN) and the fourth-order minimum norm integrator (4MN) have been compared, after implementing the 4MN one in the CL2QCD code used to realise our simulations. The 2MN integrator had already been implemented in the code since the first version was released. The two integrators belong to the class of symplectic integrators and represent an essential component of the RHMC algorithm, involved in our investigation. This step is extremely important, in order to guarantee the best quality when collecting data from simulations, and the results of the comparison suggested to favor the 2MN integrator, for both the topics.
A powerful technique to distinguish the enantiomers of a chiral molecule is the Coulomb Explosion Imaging (CEI). This technique allows us to determine the handedness of a single molecule. In CEI, the molecule becomes charged by losing many electrons in a very short period of time by interacting with the light. The repulsion forces between the positive charged particles of the molecule leads the molecule to break into parts-fragments. By measuring the three vector momentum of (at least) four fragments, the handedness observable can be determined. In this thesis, CEI is induced by absorption of a single high energy photon, which creates an inner-shell hole (K shell) of the molecule. The subsequent cascade of Auger decays lead to fragmentation. We decided to work with the formic acid molecule in this thesis. Two different experiments were conducted. The first experiment focused on exciting electrons to different energy states, while the second experiment focused on extracting directly a photoelectron to the continuum and measure the angular distribution of the photoelectron in the molecular frame. The primary goal was to search for chiral signal in a pure achiral planar molecule under the previous electron processes. The results of these findings were further implemented to two more molecules.
In the framework of the LHC Injectors Upgrade Project (LIU), the CERN Proton Synchrotron Booster (PSB) went through major upgrades resulting in new effects to study, challenges to overcome and new parameter regimes to explore. To assess the achievable beam brightness limit of the machine, a series of experimental and computational studies in the transverse planes were performed. In particular, the new injection scheme induces optics perturbations that are strongly enhanced near the half-integer resonance. In this thesis, methods for dynamically measuring and correcting these perturbations and their impact on the beam performance will be presented. Additionally, the quality of the transverse beam distributions and strategies for improvement will be addressed. Finally, the space charge effects when dynamically crossing the half-integer resonance will be characterized. The results of these studies and their broader significance beyond the PSB will be discussed.
This thesis provides a detailed derivation of dissipative spin hydrodynamics from quantum field theory for systems composed of spin-0, spin-1/2, or spin-1 particles.
The Wigner function formalism is introduced for quantum fields in the respective representations of the Poincaré group, and the conserved currents, i.e., the energy-momentum tensor and the total angular momentum tensor, in various so-called pseudogauges are derived. An expansion around the semiclassical limit in powers of the Planck constant is performed.
Subsequently, kinetic equations are obtained for binary elastic scattering, using both the de Groot-van Leeuwen-van Weert and Kadanoff-Baym method, with the latter retaining the effect of quantum statistics. The resulting collision term features both local and nonlocal contributions, with the latter providing a relaxation mechanism for the spin degrees of freedom of the quasiparticles. The local-equilibrium distribution function is derived from the requirement that the local part of the collision term vanishes.
From quantum kinetic theory, dissipative spin hydrodynamics is then constructed via the method of moments, extended to particles with spin. The system of moment equations is closed via the Inverse-Reynolds Dominance (IReD) approach, resulting in a set of equations of motion describing the evolution of both ideal and dissipative degrees of freedom. The application to polarization phenomena relevant to heavy-ion collisions is discussed.
In this thesis, the flow coefficients vn of the orders n = 1 − 6 are studied for protons and light nuclei in Au+Au collisions at Ebeam = 1.23 AGeV, equivalent to a center-of-mass energy in the nucleon-nucleon system of √sNN = 2.4 GeV. The detailed multi-differential measurement is performed with the HADES experiment at SIS18/GSI. HADES, with its large acceptance, covering almost full azimuth angle, combined with its high mass-resolution and good particle-identification capability, is well equipped to study the azimuthal flow pattern not only for protons, deuterons, and tritons but also for charged pions, kaons, the φ-mesons, electrons/positrons, as well as light nuclei like helions and alphas. The high statistics of more than seven billion Au-Au collisions recorded in April/May 2012 with HADES enables for the first time the measurement of higher order flow coefficients up to the 6th harmonic. Since the Fourier coefficient of 7th and 8th order are beyond the statistical significance only an upper bound is given. The Au+Au collision system is the largest reaction system with the highest particle multiplicities, which was measured so far with HADES. A dedicated correction method for the flow measurement had to be developed to cope with the reconstruction in-efficiencies due to occupancies of the detector system. The systematical bias of the flow measurement is studied and several sources of uncertainties identified, which mainly arise from the quality selection criteria applied to the analyzed tracks, the correction procedure for reconstruction inefficiencies, the procedures for particle identification (PID) and the effects of an azimuthally non-uniform detector acceptance. The systematic point-to-point uncertainties are determined separately for each particle type (proton, deuteron and triton), the order of the flow harmonics vn, and the centrality class. Further, the validity of the results is inspected in the range of their evaluated systematic uncertainties with several consistency checks. In order to enable meaningful comparisons between experimental observations and predictions of theoretical models, the classification of events should be well defined and in sufficiently narrow intervals of impact parameter. Part of this work included the implementation of the procedure to determine the centrality and orientation of the reaction.
In the conclusion the experimental results are discussed, including various scaling properties of the flow harmonics. It is found that the ratio v4/v2 for protons and light nuclei (deuterons and tritons) at midrapidity for all centrality classes approaches values close to 0.5 at high transverse momenta, which was suggested to be indicative for an ideal hydrodynamic behaviour. A remarkable scaling is observed in the pt dependence of v2 (v4) at mid-rapidity of the three hydrogen isotopes, when dividing by their nuclear mass number A (A^2) and pt by A. This is consistent with naive expectations from nucleon coalescence, butraises the question whether this mass ordering can also be explained by a hydrodynamical-inspired approach, like the blast-wave model. The relation of v2 and v4 to the shape of the initial eccentricity of the collision system is studied. It is found that v2 is independent of centrality for all three particle species after dividing it by the averaged second order participant eccentricity v2/⟨ε2⟩. A similar scaling is shown for v4 after division by ⟨ε2⟩^2.
This thesis contains three theoretical works about certain aspects of the interplay of electronic correlations and topology in the Hubbard model.
In the first part of this thesis, the applicability of elementary band representations (EBRs) to diagnose interacting topological phases, that are protected by spatial symmetries and time-reversal-symmetry, in terms of their single-particle Matsubara Green’s functions is investigated. EBRs for the Matsubara Green’s function in the zero-temperature limit can be defined via the topological Hamiltonian. It is found that the Green’s function EBR classification can only change by (i) a gap closing in the spectral function at zero frequency, (ii) the Green’s function becoming singular i.e. having a zero eigenvalue at zero frequency or (iii) the Green’s function breaking a protecting symmetry. As an example, the use of the EBRs for Matsubara Green’s functions is demonstrated on the Su-Schriefer-Heeger model with exact diagonalization.
In the second part the Two-Particle Self-Consistent approach (TPSC) is extended to include spin-orbit coupling (SOC). Time-reversal symmetry, that is preserved in the presence of SOC, is used to derive new TPSC self-consistency equations including SOC. SOC breaks spin rotation symmetry which leads to a coupling of spin and charge channel. The local and constant TPSC vertex then consists of three spin vertices and one charge vertex. As a test case to study the interplay of Hubbard interaction and SOC, the Kane-Mele-Hubbard model is studied. The antiferromagnetic spin fluctuations are the leading instability which confirms that the Kane-Mele-Hubbard model is an XY antiferromagnet at zero temperature. Mixed spin-charge fluctuations are found to be small. Moreover, it is found that the transversal spin vertices are more strongly renormalized than the longitudinal spin vertex, SOC leads to a decrease of antiferromagnetic spin fluctuations and the self-energy shows dispersion and sharp features in momentum space close to the phase transition.
In the third part TPSC with SOC is used to calculate the spin Hall conductivity in the Kane-Mele-Hubbard model at finite temperature. The spin Hall conductivity is calculated once using the conductivity bubble and once including vertex corrections. Vertex corrections for the spin Hall conductivity within TPSC corresponds to the analogues of the Maki-Thompson contributions which physically correspond to the excitation and reabsorption of a spin, a charge or a mixed spin-charge excitation by an electron. At all temperatures, the vertex corrections show a large contribution in the vicinity of the phase transition to the XY antiferromagnet where antiferromagnetic spin fluctuations are large. It is found that vertex corrections are crucial to recover the quantized value of −2e^2/h in the zero-temperature limit. Further, at non-zero temperature, increasing the Hubbard interaction leads to a decrease of the spin Hall conductivity. The results indicate that scattering of electrons off antiferromagnetic spin fluctuations renormalize the band gap. Decreasing the gap can be interpreted as an effective increase of temperature leading to a decrease of the spin Hall conductivity.
In this work I investigate two different systems - spin systems and charge-density-waves. The same theoretical method is used to investigate both types of system. My investigations are motivated by experimental investigations and the goal is to describe the experimental results theoretically. For this purpose I formulate kinetic equations starting from the microscopical dynamics of the systems.
First of all, a method is formulated to derive the kinetic equations diagrammatically. Within this method an expansion in equal-time connected correlation functions is carried out. The generating functional of connected correlations is employed to derive the method.
The first system to be investigated is a thin stripe of the magnetic insulator yttrium-iron-garnet (YIG). Magnons are pumped parametrically with an external microwave field. The motivation of my theoretical investigations is to explain the experimental observations. In a small parameter range close to the confluence field strength where confluence processes of two parametrically pumped magnons with the same wave vector becomes kinematically possible the efficiency of the pumping is reduced or enhanced depending on the pumping field strength. Because it is expected that that confluence and splitting processes of magnons are essential for the experimental observations I go beyond the kinetic theories that are conventionally applied in the context of parametric excitations in YIG and investigate the influence of cubic vertices on the parametric instability of magnons in YIG.
Furthermore, the influence of phonons is investigated. Usually in the literature these are taken into account as heat bath. Here, I want to explain experiments where an accumulation of magnetoelastic bosons - magnon-phonon-quasi-particles - has been observed. I employ the method of kinetic equations to investigate this phenomenon theoretically. The kinetic theory is able to reproduce the experimental observations and it is shown that the accumulation of magnetoelastic bosons is purely incoherent.
Finally, charge-density waves (CDW) in quasi-one-dimensional materials will be investigated. Charge-density waves emerge from a Peierls-instability and are a prime example for spontaneous symmetry breaking in solids. Again, the motivation for my theoretical investigations are an experiment where the spectrum of amplitude and phase phonon modes has been measured. Starting from the Fröhlich-Hamiltonian I derive kinetic equations and from these kinetic equations the equations of motion for the CDW order parameter can be derived. The frequencies and damping rates of amplitude and phase phonon modes will be derived from the linearized equations of motion. I compare my theory with existing methods. Furthermore, I also investigate the influence of Coulomb interaction.