PaperPanorama

Nuclear Theory·nucl-th

Monday·November 11, 2024

4 papers2 primary·2 cross-listed

  1. 03

    Exploring entanglement and spectral split correlations in three-flavor collective neutrino oscillations

    Pooja Siwach🇺🇸 · A. Baha Balantekin🇺🇸 · Amol V. Patwardhan🇺🇸 · Anna M. Suliga🇺🇸

    In environments with prodigious numbers of neutrinos, such as core-collapse supernovae, neutron star mergers, or the early universe, neutrino-neutrino interactions are dynamically significant. They can dominate neutrino flavor evolution and force it to be nonlinear, causing collective neutrino oscillations. Such collective oscillations have been studied numerically, for systems with up to millions of neutrinos, using mean-field or one-particle effective approximations. However, such a system of interacting neutrinos is a quantum many-body system, wherein quantum correlations could play a significant in the flavor evolution-thereby motivating the exploration of many-body treatments which follow the time evolution of these correlations. In many-body flavor evolution calculations with two neutrino flavors, the emergence of spectral splits in the neutrino energy distributions has been found to be correlated with the degree of quantum entanglement across the spectrum. In this work, for the first time, we investigate the emergence of spectral-splits in the three-flavor many-body collective neutrino oscillations. We find that the emergence of spectral splits resembles the number and location found in the mean-field approximation but not in the width. Moreover, unlike in the two-flavor many-body calculations, we find that additional degrees of freedom make it more difficult to establish a correlation between the location of the spectral splits and the degree of quantum entanglement across the neutrino energy spectrum.

    hep-thhep-phnucl-thquant-phPRD(2025)·13 citations
  2. 04

    Condensation and prescaling in spatial Polyakov loop correlations far from equilibrium

    Daniel Spitz🇩🇪 · Kirill Boguslavski🇦🇹 · Thimo Preis🇩🇪

    The far-from-equilibrium dynamics of spatial Polyakov loop correlations, which provide gauge-invariant observables akin to effective particle numbers for gluon plasmas, are investigated within real-time lattice gauge theory at weak couplings and large gluon occupations. The momentum zero mode of these correlations reveals the dynamic formation of a condensate, while at nonzero momenta, energy is transported toward the ultraviolet. We demonstrate that the non-zero momentum dynamics is well described by a direct cascade in terms of gauge-invariant Polyakov loop excitations, exhibiting self-similar prescaling indicative of a nonthermal attractor. This behavior can be analytically understood through perturbation theory for the Polyakov loop correlations and the established dynamics of gauge field correlations. We perform simulations for both and gauge groups, providing further consistency checks on the -dependence of perturbative expectations. No evidence of an inverse cascade toward lower momenta is found for momenta above the electric screening scale.

    hep-phcond-mat.quant-gashep-latnucl-thPRD(2025)·4 citations

Affiliations

first authorsco-authorsvia INSPIRE