English

Topology in full QCD at high temperature: a multicanonical approach

High Energy Physics - Lattice 2018-12-12 v2 High Energy Physics - Phenomenology High Energy Physics - Theory

Abstract

We investigate the topological properties of Nf=2+1N_f = 2+1 QCD with physical quark masses, at temperatures around 500 MeV. With the aim of obtaining a reliable sampling of topological modes in a regime where the fluctuations of the topological charge QQ are very rare, we adopt a multicanonical approach, adding a bias potential to the action which enhances the probability of suppressed topological sectors. This method permits to gain up to three orders of magnitude in computational power in the explored temperature regime. Results at different lattice spacings and physical spatial volumes reveal no significant finite size effects and the presence, instead, of large finite cut-off effects, with the topological susceptibility which decreases by 3-4 orders of magnitude while moving from a0.06a \simeq 0.06 fm towards the continuum limit. The continuum extrapolation is in agreeement with previous lattice determinations with smaller uncertainties but obtained based on ansatzes justified by several theoretical assumptions. The parameter b2b_2, related to the fourth order coefficient in the Taylor expansion of the free energy density f(θ)f(\theta), has instead a smooth continuum extrapolation which is in agreement with the dilute instanton gas approximation (DIGA); moreover, a direct measurement of the relative weights of the different topological sectors gives an even stronger support to the validity of DIGA.

Keywords

Cite

@article{arxiv.1807.07954,
  title  = {Topology in full QCD at high temperature: a multicanonical approach},
  author = {Claudio Bonati and Massimo D'Elia and Guido Martinelli and Francesco Negro and Francesco Sanfilippo and Antonino Todaro},
  journal= {arXiv preprint arXiv:1807.07954},
  year   = {2018}
}

Comments

23 pages, 13 figures