PaperPanorama

Nuclear Theory·nucl-th

Thursday·February 2, 2023

7 papers3 primary·4 cross-listed

  1. 04

    Equations of State for Dense Matter and Astrophysical Constraints

    Rafael Bán Jacobsen · Verônica Dexheimer · Ricardo Luciano Sonego Farias

    This conference proceeding presents an overview of the modern approaches in the study of baryonic matter at high densities, focusing on the use of online repositories such as CompOSE and MUSES for the calculation of neutron star properties. In this context, relevant astrophysical constraints for the equations of state (mass-radius relation, speed of sound, tidal deformability) are discussed.

    astro-ph.HEhep-phhep-thnucl-thAstron.Nachr.(2023)·0 citations
  2. 05

    Enhanced Schiff and magnetic quadrupole moments in deformed nuclei and their connection to the search for axion dark matter

    F. Dalton🇦🇺 · V. V. Flambaum🇦🇺 · A. J. Mansour🇦🇺

    Deformed nuclei possess enhanced moments violating time reversal invariance () and parity (). Collective magnetic quadrupole moments (MQM) appear in nuclei with a quadrupole deformation (which have ordinary ,-conserving collective electric quadrupole moments). Nuclei with an octupole deformation have a collective electric octupole moment, electric dipole moment (EDM), Schiff moment and MQM in the intrinsic frame which rotates with the nucleus. In a state with definite angular momentum in the laboratory frame, these moments are forbidden by and conservation, meaning their expectation values vanish due to nuclear rotation. However, nuclei with an octupole deformation have doublets of close opposite parity rotational states with the same spin, which are mixed by ,-violating nuclear forces. This mixing polarises the orientation of the nuclear axis along the nuclear spin, and all moments existing in the intrinsic frame appear in the laboratory frame (provided the nuclear spin is sufficiently large to allow such a moment). Such a mechanism produces enhanced ,-violating nuclear moments. This enhancement also takes place in nuclei with a soft octupole vibration mode. In this paper we present updated estimates for the enhanced Schiff moment in isotopes of Eu, Sm, Gd, Dy, Er, Fr, Rn, Ac, Ra, Th, Pa, U, Np and Pu in terms of the CP-violating -meson--nucleon interaction constants and , the QCD parameter and the quark chromo-EDMs. The implications of the enhanced ,-violating moments to the search for axion dark matter in solid state experiments are also discussed, with potential alternative candidate compounds in which we may expect enhanced effects suggested.

    hep-phcond-mat.othernucl-thphysics.atom-phPRC(2023)·14 citations
  3. 06

    The RHIC Cold QCD Program

    Elke-Caroline Aschenauer🇺🇸 · Kenneth Barish🇺🇸 · Alexander Bazilevsky🇺🇸 · Xiaoxuan Chu🇺🇸 · James Drachenberg🇺🇸 · Oleg Eyser🇺🇸 · Renee Fatemi🇺🇸 · Carl Gagliardi🇺🇸 · Sanghwa Park🇺🇸 · Vincent Schoefer🇺🇸 · Ralf Seidl🇯🇵 · Scott Wissink🇺🇸 · Qinghua Xu🇨🇳 · Maria Zurek🇺🇸

    The RHIC Cold QCD program has produced a remarkable breadth of physics results and experimental techniques in the exploration of the fundamental structure of strongly interacting matter over the years. In this document, we present highlights of longitudinal and transverse spin physics to date and the 25 years of innovation in accelerator science from the RHIC Spin program. These measurements and techniques will be essential to fully realize the scientific missions of the Electron-Ion Collider (EIC) by providing a comprehensive set of measurements in hadronic collisions and laying the foundation for the design of the future EIC.

    nucl-exhep-exhep-phnucl-th23 citations
  4. 07

    Radiative corrections to neutron beta decay and (anti)neutrino-nucleon scattering from low-energy effective field theory

    Oleksandr Tomalak🇺🇸

    We study radiative corrections to neutron beta decay and low-energy (anti)neutrino-nucleon scattering within a top-down effective field theory approach. As it was recently shown, a few electromagnetic and electroweak low-energy coupling constants in heavy-baryon chiral perturbation theory are yet to be determined. Performing matching to the four-fermion effective field theory, we relate these low-energy constants to correlation functions of vector and axial-vector currents. Such relations allow us to explicitly clarify scheme dependence for radiative corrections to neutron decay and low-energy charged-current (anti)neutrino scattering, provide a robust prediction of leading in the electromagnetic coupling constant contributions, and achieve a clear separation between short-distance and long-distance contributions.

    hep-phnucl-exnucl-thFew Body Syst.(2023)·7 citations

Affiliations

first authorsco-authorsvia INSPIRE