PaperPanorama

Nuclear Theory·nucl-th

Friday·July 26, 2024

13 papers6 primary·7 cross-listed

  1. 01

    Resonances and collisional properties of neutron-rich helium isotopes in the adiabatic hyperspherical representation

    Michael D. Higgins · Chris H. Greene

    This work treats few-body systems consisting of neutrons interacting with a nucleus. The adiabatic hyperspherical representation is utilized to solve the -body Schrdinger equation for the three- and four-body systems, treating both and nuclei. A simplified central potential model for the interaction is used in conjunction with a spin-dependent three-body interaction to reproduce bound-state and resonance properties as well as properties for the nucleus in its ground-state. With this Hamiltonian, the adiabatic hyperspherical representation is used to compute bound and scattering states for both and nuclei. For the system, the electric quadrupole transition between the and state is investigated. For the system, elastic scattering is investigated along with the four-body recombination process and breakup process .

    nucl-thquant-phPRC(2025)·2 citations
  2. 02

    Heavy-flavor mesons in a strong electric field

    Jiayun Xiang🇨🇳 · Gaoqing Cao🇨🇳

    Very strong electromagnetic field can be generated in peripheral relativistic heavy ion collisions. This work is devoted to exploring the interplay between the effects of a constant external electric field and confining potential on heavy-flavor mesons. As the corresponding vector potential linearly depends on one spatial coordinate for a constant electric field, it might be able to overcome the linear confining potential of QCD and induce deconfinement. To perform analytic calculations and for comparison, one and two dimensional systems are studied together with the realistic three dimensional systems. The one dimensional Schrdinger equation can be solved analytically with the help of Airy functions, and deconfinement is indeed realized when the electric field is larger than the string tension. Focus on the confining case, the two and three dimensional Schrdinger equations can be solved analytically in large limit with the help of elliptic cosine/sine functions, and the wave functions are dominated by the region antiparallel to the electric field. When a more realistic potential is applied, a non-monotonic feature is found for and -like mesons with increasing electric field.

    nucl-thhep-phPRD(2024)·2 citations
  3. 03

    Probing coalescence of light nuclei via femtoscopy and azimuthal anisotropies

    Yoshini Bailung🇮🇳 · Sudhir Pandurang Rode🇷🇺 · Neha Shah🇮🇳 · Ankhi Roy🇮🇳

    The production mechanism of light nuclei in heavy-ion collisions is vital to understanding the intricate details of nucleon-nucleon interactions. The coalescence of nucleons is a well-known mechanism that attempts to explain the production mechanism of these light clusters. This work investigates the formation mechanism of these nucleon clusters with a combination of coalescence and femtoscopy of nucleons and nuclei. It is achieved by appending a coalescence and correlation afterburner (\texttt{CRAB}) to the \texttt{SMASH} transport model. To have a proper view of the anisotropy of light nuclei clusters, a mean-field approach to \texttt{SMASH} is applied. The anisotropic coefficients of various light nuclei clusters are calculated and compared to experimental measurements. To incorporate hydrodynamics into the picture, the anisotropic measurements are completed in a hybrid \texttt{SMASH}+\texttt{vHLLE} mode. In both approaches, the femtoscopy of nucleons and light nuclei is performed, reported with CRAB, and compared to the latest experimental measurements. An insight into cluster formation time is drawn by extracting the emission source size with the Lednický-Lyuboshits (LL) model.

    nucl-thhep-phPRC(2025)·2 citations
  4. 04

    Dimensionality reduction through tensor factorization : application to \textit{ab initio} nuclear physics calculations

    Mikael Frosini · Thomas Duguet · Pierre Tamagno · Lars Zurek

    The construction of predictive models of atomic nuclei from first principles is a challenging (yet necessary) task towards the systematic generation of theoretical predictions (and associated uncertainties) to support nuclear data evaluation. The consistent description of the rich phenomenology of nuclear systems indeed requires the introduction of reductionist approaches that construct nuclei directly from interacting nucleons by solving the associated quantum many-body problem. In this context, so-called \textit{ab initio} methods offer a promising route by deriving controlled (and systematically improvable) approximations both to the inter-nucleon interaction and to the solutions of the many-body problem. From a technical point of view, approximately solving the many-body Schrödinger equation in heavy open-shell systems typically requires the construction and contraction of large mode-4 (mode-6) tensors that need to be stored repeatedly. Recently, a new dimensionality reduction method based on randomized singular value decomposition has been introduced to reduce the numerical cost of many-body perturbation theory. This work applies this lightweight formalism to the study of the Germanium isotopic chain, where standard approaches would be too expansive to run. Inclusion of triaxiality is found to improve the overall agreement with experimental data on differential quantities.

    nucl-thEPJ Web Conf.(2024)·1 citation
  5. 05

    Alpha-decay from Ti: Microscopic alpha half-life calculation using normalized spectroscopic factor

    A. C. Dassie · R. M. Id Betan

    The microscopic description of alpha decay from the nucleons' degree of freedom involves a two-step process. The first consists of the clusterization of neutron and proton pairs; the second involves the tunneling process. A robust protocol for calculating the normalized spectroscopic factor, as defined by Fliessbach, and its error is established and used for calculating the alpha-width for the states of the nucleus Ti. The Gamow Shell Model is used to calculate the structure part of the alpha-decay, while the Gamow wave function determines the reaction part. The conventional and normalized spectroscopic factors are calculated for the ground and excited states of Ti and the alpha-width and half-life of the excited states. A near alpha-threshold state has an alpha half-life of 5 sec. The normalization does not appreciably modify the ground-state clusterization, while the excited states do. The non-resonant continuum significantly increases the clustering of some of the excited states, particularly the state. The normalized formation amplitude looks like a single-particle wave function.

    nucl-thPRC(2024)·0 citations
  6. 06

    Determination of the proton spectral function of \isotope[12][]{C} from data

    Artur M. Ankowski🇵🇱 · Omar Benhar🇮🇹 · Makoto Sakuda🇯🇵

    The determination of the nuclear spectral function from the measured cross section of the electron-nucleus scattering process is discussed, and illustrated for the case of a carbon target. The theoretical model based on the local density approximation, previously employed to derive the spectral function from a combination of accurate theoretical calculations and experimental data, has been developed further by including additional information obtained from measurements performed with high missing energy resolution. The implications for the analysis of -ray emission associated with nuclear deexcitation are considered.

    nucl-thhep-phPRC(2024)·18 citations
  7. 07

    On the sensitivity of nuclear clocks to new physics

    Andrea Caputo🇨🇭 · Doron Gazit🇮🇱 · Hans-Werner Hammer🇩🇪 · Joachim Kopp🇨🇭 · Gil Paz🇺🇸 · Gilad Perez🇮🇱 · Konstantin Springmann🇮🇱

    The recent demonstration of laser excitation of the eV isomeric state of Thorium-229 is a significant step towards a nuclear clock. The low excitation energy likely results from a cancellation between electromagnetic and strong contributions, which new physics can disrupt. In this Letter, we quantify the enhancement of a nuclear clock's sensitivity to new physics using a geometric model and a novel -wave halo model of the nucleus that reproduces measured differences between Thorium-229 states. We find likely enhancements of order while a worst case scenario with enhancement is unlikely.

    hep-phnucl-exnucl-thPRC(2025)·35 citations
  8. 08

    Observability of dynamical tides in merging eccentric neutron star binaries

    János Takátsy🇭🇺 · Bence Kocsis🇬🇧 · Péter Kovács🇭🇺

    While dynamical tides only become relevant during the last couple of orbits for circular inspirals, orbital eccentricity can increase their impact during earlier phases of the inspiral by exciting tidal oscillations at each close encounter. We investigate the effect of dynamical tides on the orbital evolution of eccentric neutron star binaries using post-Newtonian numerical simulations and construct an analytic stochastic model that reproduces the numerical results. Our study reveals a strong dependence of dynamical tides on the pericenter distance, with the fractional energy transferred to dynamical tides over that dissipated in gravitational waves (GWs) exceeding at separations km for large eccentricities. We demonstrate that the effect of dynamical tides on orbital evolution can manifest as a phase shift in the GW signal. We show that the signal-to-noise ratio of the GW phase shift can reach the detectability threshold of with a single aLIGO detector at design densitivity for eccentric neutron star binaries at a distance of Mpc. This requires a pericenter distance of km ( km) at binary formation with eccentricity close to for a reasonable tidal deformability and f-mode frequency of and kHz ( and kHz), respectively. The observation of the phase shift will enable measuring the f-mode frequency of neutron stars independently from their tidal deformability, providing significant insights into neutron star seismology and the properties of the equation of state. We also explore the potential of distinguishing between equal-radius and twin-star binaries, which could provide an opportunity to reveal strong first-order phase transitions in the nuclear equation of state.

    astro-ph.HEhep-phnucl-thPRD(2024)·7 citations
  9. 09

    Incoherent diffractive production of jets in electron DIS off nuclei at high energy

    Benjamin Rodriguez-Aguilar🇮🇹 · D.N. Triantafyllopoulos🇮🇹 · S.Y. Wei🇨🇳

    We study incoherent diffractive production of two and three jets in electron-nucleus deep inelastic scattering (DIS) at small using the color dipole picture and the effective theory of the Color Glass Condensate (CGC). We consider color fluctuations in the CGC weight-function as the source of the nuclear break-up and the associated momentum transfer . We focus on the regime in which the two jets are almost back-to-back in transverse space and have transverse momenta much larger than both the momentum transfer and the saturation scale . The cross section for producing such a hard dijet is parametrically dominated by large size fluctuations in the projectile wave-function that scatter strongly and for which a third, semi-hard, jet appears in the final state. The 2 + 1 jets cross section can be written in a factorized form in terms of incoherent quark and gluon diffractive transverse momentum distributions (DTMDs) when the third jet is explicit, or incoherent diffractive parton distribution functions (DPDFs) when the third jet is integrated over. We find that the DPDFs and the corresponding cross section saturate logarithmically when , while they fall like in the regime . We further show that there is no angular correlation between the hard jet momentum and the momentum transfer. For typical EIC kinematics the 2 jets and 2 + 1 jets cross sections are of the same order.

    hep-phnucl-thPRD(2024)·7 citations
  10. 10

    Net-proton fluctuations influenced by baryon stopping and quark deconfinement

    Oleh Savchuk🇺🇸

    Preliminary data from the Beam-Energy Scan II measurements by the STAR Collaboration at the Relativistic Heavy Ion Collider suggest a dip in the fourth-to-second-order cumulant ratio when plotted vs. beam energy. At the same energy range where the structure appears, a transition from hadrons to quarks is expected, the deconfinement transition. In this paper, the role of quark deconfinement in establishing fluctuaitions in the early stages of the collision is considered. Two models are compared: one with stopping occurring on a baryon-by-baryon basis, and a second where stopping proceeds through quark degrees of freedom. In the latter model, the fluctuation of baryon number is significantly reduced and this signal is found to survive recombination into hadrons and the subsequent diffusion. The transformation from baryon to quark stopping thus produces a dip in the fourth-to-second-order cumulant ratio when plotted vs. beam energy, consistent with observations.

    hep-phnucl-thPRC(2025)·6 citations
  11. 11

    Aspects of Rotating Anisotropic Dark Energy Stars

    O. P. Jyothilakshmi · Lakshmi J. Naik · V. Sreekanth

    By employing modified Chaplygin fluid prescription for the dark energy, we construct slowly rotating isotropic and anisotropic dark energy stars. The slow rotation is incorporated via general relativistic Hartle-Thorne formalism; whereas the anisotropy is introduced through Bowers-Liang prescription. We consider both the monopole and quadrupole deformations and present a complete analysis of rotating dark energy stars. By numerically solving the rotating stellar structure equations in presence of anisotropy, we analyse and quantify various properties of dark energy stars such as mass (), radius, mass deformation, angular momentum (), moment of inertia, and quadrupole moment (), for three different equation of state parameters. We find that anisotropic slow rotation results in significant deformation of stellar mass and thereby affects other global properties studied. For the values of angular frequencies considered, the effect of anisotropy on the stellar structure is found to be more prominent than that due to rotation. The dimensionless quadrupole moment measuring deviation from a Kerr metric black hole was obtained for anisotropic dark energy stars. We observe that dark energy stars with higher anisotropic strength tend to approach the Kerr solution more closely. We report that our results have considerable agreement with various astrophysical observational measurements.

    gr-qcastro-ph.HEnucl-thEPJC(2024)·3 citations
  12. 12

    Effects of Final State Interactions on Landau Singularities

    Ajay S. Sakthivasan🇩🇪 · Maxim Mai🇩🇪 · Akaki Rusetsky🇩🇪 · Michael Döring🇺🇸

    In certain kinematic and particle mass configurations, triangle singularities may lead to line-shapes which mimic the effects of resonances. This well-known effect is scrutinized here in the presence of final-state rescattering. The goal is achieved first by utilizing general arguments provided by Landau equations, and second by applying a modern scattering formalism with explicit two- and three-body unitarity.

    hep-phhep-exhep-latnucl-thJHEP(2024)·16 citations

Affiliations

first authorsco-authorsvia INSPIRE