PaperPanorama

Nuclear Theory·nucl-th

Friday·April 6, 2018

7 papers5 primary·2 cross-listed

  1. 06

    Revisiting the pseudoscalar meson and glueball mixing and key issues in the search for pseudscalar glueball state

    Wen Qin🇨🇳 · Qiang Zhao🇨🇳 · Xian-Hui Zhong🇨🇳

    We revisit the mixing mechanism for pesudscalar mesons and glueball which is introduced by the axial vector anomaly. We demonstrate that the physical mass of the pseudoscalar glueball does not favor to be lower than 1.8 GeV if all the parameters are reasonably constrained. This conclusion, on the one hand, can accommodate the pseudoscalar glueball mass calculated by Lattice QCD, and on the other hand, is consistent with the high-statistics analyses at BESIII that all the available measurements do not support the presence of two closely overlapping pseudoscalar states in any exclusive channel. Such a result is in agreement with the recent claim that the slightly shifted peak positions for two possible states and observed in different channels are actually originated from one single state with the triangle singularity interferences. By resolving this long-standing paradox, one should pay more attention to higher mass region for the purpose of searching for the pseudoscalar glueball candidate.

    hep-phhep-exnucl-exnucl-thPRD(2018)·25 citations
  2. 07

    Spectral function for overoccupied gluodynamics from real-time lattice simulations

    K. Boguslavski🇫🇮 · A. Kurkela🇨🇭 · T. Lappi🇫🇮 · J. Peuron🇫🇮

    We study the spectral properties of a highly occupied non-Abelian non-equilibrium plasma appearing ubiquitously in weak coupling descriptions of QCD matter. The spectral function of this far-from-equilibrium plasma is measured by employing linear response theory in classical-statistical real-time lattice Yang-Mills simulations. We establish the existence of transversely and longitudinally polarized quasiparticles and obtain their dispersion relations, effective mass, plasmon frequency, damping rate and further structures in the spectral and statistical functions. Our new method can be interpreted as a non-perturbative generalization of hard thermal loop (HTL) effective theory. We see indications that our results approach leading order HTL in the appropriate limit. The method can also be employed beyond the range of validity of HTL.

    hep-phhep-latnucl-thPRD(2018)·73 citations

Affiliations

first authorsco-authorsvia INSPIRE