PaperPanorama

Nuclear Theory·nucl-th

Thursday·June 11, 2026

9 papers5 primary·4 cross-listed

  1. 06

    Post-Merger Gravitational-Wave Uncertainties of Binary Neutron Stars under Multi-Messenger EOS Constraints

    Yong-Jia Huang🇨🇳 · Luca Baiotti🇯🇵

    The high-frequency gravitational waves emitted by a binary neutron star merger remnant carry information on matter at densities and temperatures beyond those reached in isolated neutron stars. We quantify how tightly current multi-messenger constraints already determine the dominant post-merger frequency . Adopting a set of cold equations of state (EOSs) constrained jointly by gravitational-wave tidal deformability, NICER mass--radius measurements, massive-pulsar masses, chiral effective field theory at low density, and perturbative QCD at asymptotically high density, for each binary mass we select the softest and stiffest models of the multi-messenger posterior and follow their coalescence with fully general-relativistic hydrodynamics simulations. Together with a broad set of EOSs drawn from the literature ( models in total), these simulations show that, once the binary mass and a single measure of the stellar compactness ( or ) are held fixed, the residual spread of is only , a factor of several below the range spanned by an EOSs set including those already disfavored by the data. This tight calibration of the cold-matter prediction implies that a future high-frequency detection departing from it would point directly to additional physics, such as a hadron--quark transition occurring at finite temperature. We further confirm the quasi-universal relation to within , which provides a model-independent estimate of from the secondary spectral peaks.

    astro-ph.HEgr-qcnucl-thClass.Quant.Grav.(2026)·0 citations
  2. 07

    Polarized Nuclear DVCS at the EIC

    Jackson R. Pybus🇺🇸 · Xuan Li🇺🇸 · Liliet Calero-Diaz🇺🇸

    The Electron-Ion Collider (EIC) will enable a series of measurements at unprecedented energies and luminosities, providing new opportunities to investigate the microscopic structure of nucleons and nuclei at small . Exclusive processes such as Deeply Virtual Compton Scattering (DVCS) offer unique access to the three-dimensional structure of hadrons through Generalized Parton Distributions (GPDs), while polarized electron and ion beams further enable detailed studies of spin-dependent structure. A model for coherent DVCS on polarized Heis developed and applied to simulations of for -GeV He collisions at the EIC. Using this framework, the statistical precision achievable is estimated for measurements of beam-spin asymmetries and for the extraction of the Compton Form Factors (CFFs) and . Early EIC data are found to enable precise differential measurements of the unpolarized CFF and to provide significant constraints on its real and imaginary components. By contrast, meaningful constraints on the polarized CFF require substantially larger integrated luminosities. The kinematics of the recoil He nucleus are also examined, and the far-forward detector capabilities at the EIC required to tag the intact nucleus and perform fully exclusive measurements of coherent nuclear DVCS are discussed.

    nucl-exhep-phnucl-th0 citations
  3. 08

    Bound State Solutions of the Relativistic Finite-difference Equation for the Ring-shaped Quesne Oscillator Potential

    Sh.M.Nagiyev · Narmin Nasibova · V. A. Tarverdiyeva · G. H. Guliyeva

    We solve exactly the relativistic finite-difference equation for the quantum three-dimensional ring-shaped Quesne oscillator potential. Our investigation is based on a finite-difference version of relativistic quantum mechanics. So-called relativistic configurational r-space is a key concept here. We show that the radial wavefunctions and angular wavefunctions are expressed through the continuous dual Hahn polynomials and Jacobi polynomials, respectively. A discrete energy spectrum has been found. The radial wave functions and energy spectrum have the correct nonrelativistic limit. We also build a dynamical symmetry group SU (1, 1) for the radial part of the equation of motion, which allows us to find the energy spectrum purely algebraically.

    quant-phmath-phmath.MPnucl-th0 citations
  4. 09

    Factorizing quarkonium LDMEs and TMDSTFs using effective field theory

    Marston Copeland

    We use effective field theory to factorize production matrix elements that appear in the NRQCD framework for quarkonium cross sections. By applying a Hubbard-Stratonovich transformation and appropriate field redefinitions, we show that the soft and ultrasoft sectors of NRQCD can be decoupled from the heavy quark and antiquark fields in a hybrid vNRQCD/pNRQCD Lagrangian at leading order in the velocity power-counting. This enables us to re-factorize quarkonium production matrix elements in terms of matrix elements of color-singlet composite fields, which we can write as the wave-function at the origin, and state independent vacuum correlators of chromo-electric and chromo-magnetic gluon fields. This approach verifies powerful relationships between the LDMEs of different S-wave quarkonia originally derived using pNRQCD. Additionally, it allows us to derive new relationships for the production matrix elements used in the transverse momentum dependent factorization (TMD) framework, known as TMD soft transition functions, providing a much stronger set of constraints on these nonperturbative operators. This work significantly advances our understanding of quarkonium production, particularly in the TMD framework.

    hep-phhep-thnucl-th0 citations

Affiliations

first authorsco-authorsvia INSPIRE