PaperPanorama

Nuclear Theory·nucl-th

Thursday·January 9, 2025

10 papers3 primary·7 cross-listed

  1. 01

    Clusterization aspects in the states of non-rotating and fast rotating nuclei

    A. V. Afanasjev

    The understanding of clustering aspects at the ground state of nuclei and in fast rotating ones within the framework of covariant density functional theory has been reviewed and reanalyzed. The appearance of many exotic nuclear shapes in nuclear chart can be inferred from combined analysis of nodal structure of the densities of the single-particle states and the evolution of such states in the Nilsson diagram with deformation and particle number. Such analysis which is supported by fully self-consistent calculations allows to predict the existence of nuclear configurations with specific shape or cluster properties at ground state and at high spin. For example, it indicates that in a given shell with principal quantum number only the lowest in energy two-fold degenerate deformed state can contribute to the formation of linear chain cluster structures.

    nucl-thEPJ Web Conf.(2024)·0 citations
  2. 02

    Dark matter effects on the properties of quark stars and the implications for the peculiar objects

    Hong-Ming Liu🇨🇳 · Peng-Cheng Chu🇨🇳 · He Liu🇨🇳 · Xiao-Hua Li🇨🇳 · Zeng-Hua Li🇨🇳

    We systematically investigate the observable properties of dark matter-admixed quark stars (DQSs) using the confined-isospin-density-dependent-mass model in combination with the generic bosonic self-interacting dark matter model. Our results show that the dark matter (DM) can significantly influence the properties of quark stars including the mass, radius, and the central pressure at the maximum mass configurations. Moreover, we observe that the mass of DMparticles and the DMfraction significantly affect the types of stellar configurations, and we study these configurations in detail under various scenarios and predict the possibility that two recently observed peculiar objects HESS J1731-347 and PSR J014-4002E are DQSs.

    nucl-thEPJC(2026)·5 citations
  3. 03

    Effective action for relativistic hydrodynamics from Crooks fluctuation theorem

    Nicki Mullins🇺🇸 · Mauricio Hippert🇧🇷 · Jorge Noronha🇺🇸

    A new effective theory framework for fluctuating hydrodynamics in the relativistic regime is derived using standard thermodynamical principles and general properties of non-equilibrium stochastic dynamics. For the first time, we establish clear and concise conditions for ensuring that the resulting effective theories are causal, stable, and well-posed within general relativity. These properties are independent of spacetime foliation and are valid in the full nonlinear regime. Out-of-equilibrium fluctuations are constrained by a relativistically covariant version of Crooks fluctuation theorem, which determines how the entropy production is distributed even when the system is driven by an external force. This leads to an emerging symmetry responsible for imposing fluctuation-dissipation relations for n-point correlation functions, which matches the standard constraints for the Schwinger-Keldysh effective action.

    nucl-thhep-phhep-thPRL(2025)·9 citations
  4. 04

    Decay spectroscopy of heavy and superheavy nuclei

    Dieter Ackermann🇫🇷

    After more than half a century since the first predictions of the so-called "island of stability of superheavy nuclei", exploring the limits of nuclear stability at highest atomic numbers is still one of the most prominent challenges in low-energy nuclear physics. These exotic nuclear species reveal their character and details of some of their properties through their induced or spontaneous disintegration. The achievements in the field of superheavy nuclei (SHN) research, which involves studying the production and decay of the heaviest nuclear species, have been reported in a number of review papers. In the introduction of this paper, references are provided to review papers, summarizing the many aspects of SHN research in other disciplines, like chemistry, atomic physics, and earlier work on nuclear structure, including in-beam spectroscopy, and superheavy element (SHE) synthesis. This review is an attempt to summarize the experimental progress that has been made in recent years by employing the versatile tool park of Decay Spectroscopy After Separation (DSAS) for the heaviest isotopes from Z=99 (einsteinium) to Z=118 (oganesson). DSAS, with its major instrumentation components heavy-ion accelerator, separator and decay detection, is the only way to access the heaviest nuclei up to oganesson. While in-beam {\gamma}-spectroscopy has reached 256Rf in terms of the highest atomic number Z and mass number A, SHE chemistry succeeded to sort flerovium (Z = 114) as the heaviest element into the periodic table. Laser spectroscopy and precise mass measurements are limited basically to the nobelium/fermium region, with high-precision Penning-trap mass-measurements being performed for 256Lr and 257Rf, and with the 257Db mass obtained, using a multi-reflection time-of-flight mass spectrometer (MRToF MS).

    nucl-exnucl-thPPNP(2026)·6 citations
  5. 05

    A Bogomol'nyi-Prasad-Sommerfield bound with a first-order system in the Gross-Pitaevskii equation

    Fabrizio Canfora🇨🇱 · Pablo Pais🇨🇱

    A novel Bogomol'nyi-Prasad-Sommerfield (BPS) bound for the Gross-Pitaevskii equations in two spatial dimensions is presented. The energy can be bounded from below in terms of the combination of two boundary terms, one related to the vorticity (but ``dressed'' by the condensate profile) and the second to the ``skewness'' of the configurations. The bound is saturated by configurations that satisfy a system of two first-order partial differential equations. When such a BPS system is satisfied, the Gross-Pitaevskii equations are also satisfied. The analytic solutions of this BPS system in the present manuscript represent configurations with fractional vorticity living in an annulus. Using these techniques, we present the first analytic examples of this kind. The hydrodynamical interpretation of the BPS system is discussed, and the implications of these results are outlined.

    cond-mat.quant-gashep-phhep-thnlin.SI+1EPJC(2025)·6 citations
  6. 06

    Two-loop form factors for -wave quarkonium production and decay

    Melih A. Ozcelik🇫🇷

    We present the analytical results for the two-loop form factors needed for production and decay. We consider the two-loop corrections to the process , that has been known only numerically before, and the processes , and , which have not been computed before. We observe that the NRQCD pole structure of the two-loop amplitude in the channel is more involved for the spin-triplet -wave case than for the pseudo-scalar -wave case. It involves in addition to the standard Coulomb singularity also a new singularity whose cancellation requires the inclusion of the form factor. We give the high precision numerical results for the hard functions that can be used to compute production and decay up to NNLO accuracy.

    hep-phnucl-thJHEP(2025)·2 citations
  7. 07

    On the -angle physics of QCD under pressure: The strange and isospin phase diagram

    Jahmall Bersini🇯🇵 · Alessandra D'Alise🇮🇹 · Clelia Gambardella🇮🇹 · Francesco Sannino🇮🇹

    We unveil the impact of the -angle on the QCD phase diagram at nonzero isospin and strangeness chemical potentials for three light flavors and different quark mass ratios. We establish the phase boundaries as well as the nature of the associated phase transitions. The order parameters and the physical spectrum in the different phases are determined. We further elucidate the physics around where we discover a novel parity-preserving superfluid phase. Finally, we comment on Dashen's phenomenon in the superfluid phases when varying the number of light flavors.

    hep-phhep-lathep-thnucl-thJHEP(2025)·3 citations
  8. 08

    Understanding thermalization in a non-Abelian gauge theory in terms of its soft modes

    Sayak Guin🇮🇳 · Harshit Pandey🇮🇳 · Sayantan Sharma🇮🇳

    We measure the maximal Lyapunov exponent of physical states in a SU(2) gauge theory consisting of soft momentum modes both in and out-of-thermal equilibrium conditions using ab-initio lattice techniques. We have implemented different algorithms to appropriately describe the dynamics of soft-modes for a wide range of temperatures and under non-equilibrium conditions. The non-equilibrium state has been realized starting from an over-occupied initial condition for low momentum soft gluons whereas the thermal state comprises of strongly interacting soft gluons at temperatures where these are well separated from the hard momentum modes. Spectra of positive Lyapunov exponents is observed in both these states, similar to a chaotic dynamical system. From the Kolmogorov-Sinai entropy rate measured in terms of this spectrum, we estimate a typical time-scale of fm/c to achieve thermalization at MeV starting from the non-thermal state. We also measure, for the first time, the for long wavelength critical modes of SU(2) using the out-of-time-ordered correlator of a classical scalar field theory, which shares the same universal behavior with SU(2), near the deconfinement phase transition. The is observed to maximize at the transition temperature.

    hep-lathep-phhep-thnucl-thPLB(2025)·10 citations
  9. 09

    Isospin strikes back

    Francesco Rosini🇮🇹 · Simone Pacetti🇮🇹

    Assuming isospin conservation, the decay of a vector meson into the final state is purely electromagnetic. At the leading order, the vector meson first converts into a virtual photon that, then produces the final state. Moreover, such a mechanism, i.e., the virtual photon coupling to , is the solely intermediate process through which, in Born approximation, the reaction does proceed. It follows that any significant difference between the amplitudes of the processes and at the mass must be ascribed to an isospin-violating contribution in the decay. In Eur. Phys. J. C , 903 (2020) we studied the decay of the vector meson into and, on the light of the large branching fraction , published in the 2018 edition of the Review of Particle Physics Phys. Rev. D , 030001 (2018), we claimed either the presence of a significant isospin-violating contribution or, with a lesser emphasis, a "not complete reliability of the only available datum". In any case, we propose a new measurement. Apparently, our second and considered less serious hypothesis was the right one, indeed the branching fraction published in the 2024 edition of the Review of Particle Physics Phys. Rev. D , 030001 (2024) is , more than seven times lower with the error that increased from to .

    hep-phhep-exnucl-thEPJC(2025)·3 citations

Affiliations

first authorsco-authorsvia INSPIRE