PaperPanorama

Nuclear Theory·nucl-th

Thursday·March 26, 2026

17 papers6 primary·11 cross-listed

  1. 07

    Radiative corrections to two-neutrino double-beta decay

    Jordy de Vries🇳🇱 · Emanuele Mereghetti🇺🇸 · Saad el Morabit🇳🇱 · Stefan Sandner🇺🇸

    We use heavy-nucleus effective field theory to compute radiative corrections to two-neutrino double- decay (). Our main result is the first derivation of a universal radiative-correction factor for double-weak decays -- the analogue of the Sirlin function in single- decay -- independent of nuclear matrix elements and excitation energies. This "double-weak Sirlin function" depends on the individual electron energies as well as their relative angle and differs significantly from the approximation obtained by summing two single- decay Sirlin functions. In addition, we calculate the nuclear-structure-dependent component of the radiative corrections and find that they can still be neglected at current experimental sensitivities. On the other hand, the double-weak Sirlin function induces distortions of the electron energies and angular spectra that are comparable in size to the leading nuclear-structure corrections parametrized by the ratio of nuclear matrix elements, . Our results indicate that extractions of nuclear structure information and tests of the Standard Model from high-precision measurements must include double-weak radiative corrections, implying that recent extractions of should be revisited.

    hep-phnucl-exnucl-thPRL(2026)·0 citations
  2. 08

    A Breath of Fresh Air for Molière: Detecting Molière Scattering using Jet Substructure Observables in Oxygen Collisions

    Arjun Srinivasan Kudinoor🇺🇸 · Arthur Yi-Ting Lin🇺🇸 · Daniel Pablos🇪🇸 · Krishna Rajagopal🇺🇸

    Ultra-relativistic oxygen-oxygen (OO) collisions are a promising arena in which to probe rare, large-angle, high momentum-transfer Molière scatterings between energetic jet partons and quasiparticles in quark-gluon plasma (QGP). As a jet propagates through the droplet of QGP formed in the same collision, its constituents lose energy to and excite wakes in the medium, and may scatter off quark- and gluon-like quasiparticles in QGP. Using the hybrid strong/weak coupling model, we show that including Molière scatterings between jet partons and medium quasiparticles is essential to reproduce recent CMS measurements of charged-particle suppression in OO collisions with this model. We then present the first theoretical study of how jet-medium interactions modify the internal structure of jets in OO collisions. We find that Molière scatterings broaden the Soft Drop splitting angle , enhancing the population of and jets with in OO collisions relative to pp collisions. Energy-energy correlators (EECs) provide a complementary probe, exhibiting enhanced large-angle correlations within jets due to jet-induced wakes and Molière scattering. In both cases, we propose an experimental measurement where the relevant OO/pp ratio can, if enhanced above unity in future data as in our calculations, be a distinctive, model-independent, detection of hard scattering off QGP quasiparticles. We furthermore use our calculations of EECs to show how the angular scale corresponding to the deflection of jet or medium partons by Molière scattering is imprinted in the EEC for jets with radius in OO collisions. These results demonstrate that jet substructure measurements in OO collisions are promising avenues to probe the quasiparticles that emerge at short distances within an otherwise strongly coupled medium.

    hep-phhep-thnucl-exnucl-th5 citations
  3. 09

    Information-Geometric Quantum Process Tomography in Unital Open Single-Qubit Dynamics

    T. Koide🇧🇷 · A. van de Venn🇪🇪

    We derive an exact information-geometric inequality valid for both Markovian and non-Markovian mixed-state dynamics. This inequality saturates into a strict equality for single qubits because they belong to the quantum exponential family. This identity enables a non-iterative linear regression approach to continuous-time quantum process tomography, which, provided the full-rank condition is satisfied, yields a unique global solution and avoids local minima traps typical of standard non-linear optimization. Furthermore, as the formulation is inherently unconstrained, negative dissipation rates provide direct evidence of non-Markovianity. Numerical simulations of the unital diagonal Bloch generator derived from the Gorini-Kossakowski-Sudarshan-Lindblad (GKSL) master equation demonstrate the validity of this geometric estimator and highlight the necessity of error mitigation near the pure-state boundary where the inverse metric becomes singular.

    quant-phcond-mat.stat-mechhep-thnucl-thPLA(2026)·0 citations
  4. 10

    Semi-inclusive deep-inelastic scattering on a polarized spin-1 target. I. Cross section and spin observables

    W. Cosyn🇺🇸 · C. Weiss🇺🇸

    We develop the theoretical framework for semi-inclusive deep-inelastic scattering on a polarized spin-1 target and apply it to scattering on the polarized deuteron with spectator nucleon tagging. In Part I (this article) we present the general form of the semi-inclusive cross section and polarization observables for the spin-1 target. A relativistically covariant formulation in terms of 4-vectors and invariant polarization parameters is employed. The target polarization is described by a spin density matrix with vector and tensor polarization. The spin and azimuthal angle dependence of the semi-inclusive cross section is derived and parametrized in terms of invariant structure functions. To validate the result, the structure functions are expressed as photon-target helicity amplitudes with known symmetry properties. The expressions presented here are kinematic (no assumptions about particle production dynamics) and valid in all regions of the deep-inelastic final state (current and target fragmentation regions). In Part II (following article), we consider deep-inelastic scattering on the polarized deuteron with spectator nucleon tagging as a special case of target fragmentation. The semi-inclusive structure functions are computed by separating nuclear and hadronic structure, and the polarization observables are explored as functions of the tagged nucleon momentum.

    hep-phnucl-exnucl-thPRC(2026)·2 citations
  5. 11

    Semi-inclusive deep-inelastic scattering on a polarized spin-1 target. II. Deuteron and spectator nucleon tagging

    W. Cosyn🇺🇸 · C. Weiss🇺🇸

    We develop the theoretical framework for semi-inclusive deep-inelastic scattering on a polarized spin-1 target and apply it to scattering on the polarized deuteron with spectator nucleon tagging. In Part I (previous article) we present the general form of the semi-inclusive cross section and polarization observables for the spin-1 target. In Part II (this article) we consider deep-inelastic scattering on the polarized deuteron with spectator nucleon tagging as a special case of target fragmentation. Methods of light-front quantization are employed to separate nuclear and hadronic structure in the high-energy process and achieve a composite description. The light-front wave function of the polarized deuteron is obtained from a rotationally covariant 3-dimensional wave function in the center-of-mass frame of the proton-neutron system. The tagged structure functions are computed in the impulse approximation. The momentum and spin distribution of the active nucleon are controlled by the deuteron polarization and the detected spectator momentum ( wave ratio). The cross section and spin asymmetries are evaluated for general deuteron polarization (vector and tensor, longitudinal and transverse) as functions of the spectator momentum. Tensor-polarized spin asymmetries of order unity are achieved for spectator momenta 300 MeV, which select configurations with large -wave. Sum rules for the tagged spin structure functions are derived. The results can be used for simulations of spectator tagging in future polarized fixed-target experiments (Jefferson Lab) or at the Electron-Ion Collider.

    hep-phnucl-exnucl-thPRC(2026)·2 citations
  6. 12

    Meson mixing effects on the speed of sound in isospin-imbalanced matter

    Alejandro Ayala · Bruno S. Lopes · Ricardo L. S. Farias · Luis C. Parra

    We explore isospin imbalanced strongly interacting matter within the two-flavor Linear Sigma Model with quarks, an effective model for low-energy QCD. At one loop order, including quark, pion, and sigma fluctuations while respecting chiral symmetry, we find that the formation of an isospin condensate necessarily gives rise to a Goldstone mode. This mode enforces a nontrivial relation between the chiral and isospin condensates through the mixing of charged pions and the sigma field in the condensed phase. From the resulting thermodynamic potential, we compute the speed of sound and observe a pronounced peak as a function of the isospin chemical potential. Although the peak of the speed of sound may be described at tree-level and including only quarks in the analysis, meson dynamics introduces further constraints that influence the position and width of the peak which making it to align well with lattice QCD simulations. Therefore we identify that the shape and position of the peak is a consequence of the Goldstone mode dynamics and of the associated charged pion sigma mixing.

    hep-phhep-lathep-thnucl-thPoS(2026)·0 citations
  7. 13

    Impact of muons on the bulk viscosity of neutron star matter metamodels

    José Luis Hernández🇪🇸 · Cristina Manuel🇪🇸 · Laura Tolos🇪🇸

    Recent studies invoke a unified description of different neutron star observables using metamodels, which parametrize the Equation of State (EoS) of neutron star matter close to nuclear saturation density in terms of few nuclear parameters. In this light, the bulk viscosity in the neutrino-transparent regime of dense nuclear matter composed of neutrons, protons and electrons has been recently shown to be mostly sensitive to the value of the nuclear symmetry energy. As muons are also present at densities around nuclear saturation, we further analyse in this manuscript their impact on this transport coefficient as a function of the slope of the symmetry energy. We find that muons introduce both relevant qualitative and quantitative effects in the bulk viscous dissipation. Increasing by a factor two has an effect of several orders of magnitude on the (frequency-independent) bulk viscosity. We also find that for all values of the frequency-dependent bulk viscosity presents a double peak structure for some values of the density, absent without muons. This also represents changes in orders of magnitude of the viscosity in narrow windows of densities that could be attainable in a neutron star for enough high values of . We present a systematic numerical analysis of both second-order transport coefficients, frequency-dependent bulk viscosity, and damping times of density oscillations as a function of the density and the slope, and find when these could be relevant for the dynamics of the merger of neutrons stars.

    hep-phastro-ph.HEnucl-th1 citation
  8. 14

    Local Thermalization of SU(2) Lattice Gauge Fields on Quantum Computers

    Jiunn-Wei Chen🇹🇼 · Yu-Ting Chen🇹🇼 · Ghanashyam Meher🇹🇼 · Berndt Müller🇺🇸 · Andreas Schäfer🇩🇪 · Xiaojun Yao🇺🇸

    We simulate the local thermalization dynamics for minimally truncated SU(2) pure gauge theory on linear plaquette chains with up to 151 plaquettes using IBM quantum computers. We study the time dependence of the entanglement spectrum, Rényi-2 entropy and anti-flatness on small subsystems. The quantum hardware results obtained after error mitigation agree with extrapolated classical simulator results for chains consisting of up to 101 plaquettes. Our results demonstrate the feasibility of local thermalization studies for chaotic quantum systems, such as nonabelian lattice gauge theories, on current noisy quantum computing platforms.

    hep-lathep-phnucl-thquant-ph10 citations
  9. 15

    Precision Tests of Isospin Symmetry through Coulomb excitation of A = 62 Nuclei

    K. Wimmer🇩🇪 · T. Hüyük🇪🇸 · S. M. Lenzi🇮🇹 · A. Poves🇪🇸 · F. Browne🇯🇵 · P. Doornenbal🇯🇵 · T. Koiwai🇯🇵 · T. Arici🇩🇪 · M. A.~Bentley🇬🇧 · M. L.~Cortés🇮🇹 · T. Furumoto🇯🇵 · N. Imai🇯🇵 and 15 other authors

    Isospin symmetry in the mass system was investigated through Coulomb excitation reactions at the RIKEN Radioactive Isotope Beam Factory. Beams of Zn, Ga, and Ge were studied using the BigRIPS-ZeroDegree-DALI2 setup under identical experimental conditions, allowing for cancellation of systematic uncertainties. Inelastic scattering cross sections measured with two different targets were used to extract nuclear deformation lengths and matrix elements. The isospin symmetry of the system was rigorously tested by examining the linearity of the proton matrix elements within the triplet with high precision. The observed linear relationship between the reduced proton matrix elements for the three nuclei holds within experimental uncertainties, providing a stringent test of isospin symmetry. This experiment provides the most accurate test, to date, of isospin symmetry rules using transition matrix elements. These results were interpreted using large-scale shell-model calculations, offering valuable insights into isospin symmetry behavior in this region of the nuclear chart.

    nucl-exnucl-thPLB(2026)·1 citation
  10. 16

    The dipole strength distribution of He and decay characteristics

    C. Lehr🇩🇪 · T. Aumann · M. Duer🇩🇪 · A. T. Saito🇯🇵 · T. Nakamura🇯🇵 · N. L. Achouri🇫🇷 · D. Ahn🇯🇵 · H. Baba🇯🇵 · S. Bacca🇩🇪 · C. A. Bertulani🇺🇸 · M. Böhmer🇩🇪 · F. Bonaiti🇩🇪 and 82 other authors

    The weak binding and spatially extended neutron densities characteristic of drip-line nuclei give rise to a distinctive low-energy dipole response. The drip-line nucleus He is the most neutron-rich bound nucleus with a mass-to-charge ratio of . We measure the dipole response of He, including for the first time the four-neutron decay channel. A total dipole strength of ~MeVfm and a dipole polarizability of ~fm are extracted from the differential Coulomb-excitation cross section and compared to state-of-the-art theoretical calculations employing coupled cluster and three-body approaches. We find that the dipole continuum is dominated, even at high excitation energies well above the decay threshold, by two-neutron emission, pointing to a He structure of the excited dipole mode. No indication was found for a final-state correlation, while pronounced and He- final-state correlations are apparent.

    nucl-exnucl-thPRL(2026)·2 citations
  11. 17

    Effects of the initial-state geometry on D-meson production in pp and pPb collisions

    R. Terra🇧🇷 · A. V. Giannini🇵🇹 · F. S. Navarra🇧🇷

    Going from lower to higher multiplicity events in proton-proton and proton-lead collisions, the data show a stronger than linear growth of the D-meson normalized yields. In this contribution we try to understand this behavior using a Monte Carlo event generator which implements the -factorization formalism. We use different spatial distribution of matter in the proton and in the lead nucleus at the initial stage of these collisions. We find that, with all the tested spatial distributions, the model reproduces well the behavior seen in the data. We conclude that this observable is not appropriate for a detailed study of the spatial distribution of matter in the proton.

    hep-phnucl-th0 citations

Affiliations

first authorsco-authorsvia INSPIRE