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Spectroscopy, equation of state and monopole percolation in lattice QED with two flavors

Non-compact lattice QED with two flavors of light dynamical quarks is simulated on $16^4$ lattices, and the chiral condensate, monopole density and susceptibility and the meson masses are measured. Data from relatively high statistics runs at relatively small bare fermion masses of 0.005, 0.01, 0.02...

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Detalles Bibliográficos
Autores principales: Hands, S.J., Kocic, A., Kogut, J.B., Renken, R.L., Sinclair, D.K., Wang, K.C.
Lenguaje:eng
Publicado: 1994
Materias:
Acceso en línea:https://dx.doi.org/10.1016/0550-3213(94)90630-0
http://cds.cern.ch/record/240431
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author Hands, S.J.
Kocic, A.
Kogut, J.B.
Renken, R.L.
Sinclair, D.K.
Wang, K.C.
author_facet Hands, S.J.
Kocic, A.
Kogut, J.B.
Renken, R.L.
Sinclair, D.K.
Wang, K.C.
author_sort Hands, S.J.
collection CERN
description Non-compact lattice QED with two flavors of light dynamical quarks is simulated on $16^4$ lattices, and the chiral condensate, monopole density and susceptibility and the meson masses are measured. Data from relatively high statistics runs at relatively small bare fermion masses of 0.005, 0.01, 0.02 and 0.03 (lattice units) are presented. Three independent methods of data analysis indicate that the critical point occurs at $\beta =0.225(5)$ and that the monopole condensation and chiral symmetry breaking transitions are coincident. The monopole condensation data satisfies finite size scaling hypotheses with critical indices compatible with four dimensional percolation. The best chiral equation of state fit produces critical exponents ($\delta=2.31$, $\beta_{mag}=0.763$) which deviate significantly from mean field expectations. Data for the ratio of the sigma to pion masses produces an estimate of the critical index $\delta$ in good agreement with chiral condensate measurements. In the strong coupling phase the ratio of the meson masses are $M_\sigma^2/M_\rho^2\approx 0.35$, $M_{A_1}^2/M_\rho^2\approx 1.4$ and $M_\pi^2/M_\rho^2\approx 0.0$, while on the weak coupling side of the transition $M_\pi^2/M_\rho^2\approx 1.0$, $M_{A_1}^2/M_\rho^2\approx 1.0$, indicating the restoration of chiral symmetry.\footnote{$\,^{}$}{August 1992}
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institution Organización Europea para la Investigación Nuclear
language eng
publishDate 1994
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spelling cern-2404312023-03-15T19:10:49Zdoi:10.1016/0550-3213(94)90630-0http://cds.cern.ch/record/240431engHands, S.J.Kocic, A.Kogut, J.B.Renken, R.L.Sinclair, D.K.Wang, K.C.Spectroscopy, equation of state and monopole percolation in lattice QED with two flavorsParticle Physics - TheoryNon-compact lattice QED with two flavors of light dynamical quarks is simulated on $16^4$ lattices, and the chiral condensate, monopole density and susceptibility and the meson masses are measured. Data from relatively high statistics runs at relatively small bare fermion masses of 0.005, 0.01, 0.02 and 0.03 (lattice units) are presented. Three independent methods of data analysis indicate that the critical point occurs at $\beta =0.225(5)$ and that the monopole condensation and chiral symmetry breaking transitions are coincident. The monopole condensation data satisfies finite size scaling hypotheses with critical indices compatible with four dimensional percolation. The best chiral equation of state fit produces critical exponents ($\delta=2.31$, $\beta_{mag}=0.763$) which deviate significantly from mean field expectations. Data for the ratio of the sigma to pion masses produces an estimate of the critical index $\delta$ in good agreement with chiral condensate measurements. In the strong coupling phase the ratio of the meson masses are $M_\sigma^2/M_\rho^2\approx 0.35$, $M_{A_1}^2/M_\rho^2\approx 1.4$ and $M_\pi^2/M_\rho^2\approx 0.0$, while on the weak coupling side of the transition $M_\pi^2/M_\rho^2\approx 1.0$, $M_{A_1}^2/M_\rho^2\approx 1.0$, indicating the restoration of chiral symmetry.\footnote{$\,^{}$}{August 1992}Non-compact lattice QED with two flavors of light dynamical quarks is simulated on $16~4$ lattices, and the chiral condensate, monopole density and susceptibility and the meson masses are measured. Data from relatively high statistics runs at relatively small bare fermion masses of 0.005, 0.01, 0.02 and 0.03 (lattice units) are presented. Three independent methods of data analysis indicate that the critical point occurs at $\beta =0.225(5)$ and that the monopole condensation and chiral symmetry breaking transitions are coincident. The monopole condensation data satisfies finite size scaling hypotheses with critical indices compatible with four dimensional percolation. The best chiral equation of state fit produces critical exponents ($\delta=2.31$, $\beta_{mag}=0.763$) which deviate significantly from mean field expectations. Data for the ratio of the sigma to pion masses produces an estimate of the critical index $\delta$ in good agreement with chiral condensate measurements. In the strong coupling phase the ratio of the meson masses are $M_\sigma~2/M_\rho~2\approx 0.35$, $M_{A_1}~2/M_\rho~2\approx 1.4$ and $M_\pi~2/M_\rho~2\approx 0.0$, while on the weak coupling side of the transition $M_\pi~2/M_\rho~2\approx 1.0$, $M_{A_1}~2/M_\rho~2\approx 1.0$, indicating the restoration of chiral symmetry.\footnote{$\,~{}$}{August 1992}Non-compact lattice QED with two flavors of light dynamical quarks is simulated on 16 4 lattices, and the chiral condensate, monopole density and susceptibility and the meson masses are measured. Data from relatively high statistics runs at relatively small bare fermion masses of 0.005, 0.01, 0.02 and 0.03 (lattice units) are presented. Three independent methods of data analysis indicate that the critical point occurs at β = 0.225 (5) and that the monopole condensation and chiral symmetry breaking transitions are coincident. The monopole condensation data satisfies finite-size scaling hypotheses with critical indices compatible with four-dimensional percolation. The best chiral equation of state fit produces critical exponents ( δ = 2.31, β mag = 0.763) which deviate significantly from mean field expectations. Data for the ratio of the sigma to pion masses produces an estimate of the critical index δ in good agreement with chiral condensate measurements. In the strong coupling phase the ratio of the meson masses are M σ 2 / M ϱ 2 ≈ 0.35, M A 1 2 / M ϱ 2 ≈ 1.4 nd M π 2 / M ϱ 2 ≈ 0.0, while on the weak coupling side of the transition M π 2 / M ϱ 2 ≈ 1.0, M A 1 2 / M ϱ 2 ≈ 1.0, indicating the restoration of chiral symmetry.hep-lat/9208021CERN-TH-6609-92ILL-TH-92-16CERN-TH-6609-92ILL-TH-92-16oai:cds.cern.ch:2404311994
spellingShingle Particle Physics - Theory
Hands, S.J.
Kocic, A.
Kogut, J.B.
Renken, R.L.
Sinclair, D.K.
Wang, K.C.
Spectroscopy, equation of state and monopole percolation in lattice QED with two flavors
title Spectroscopy, equation of state and monopole percolation in lattice QED with two flavors
title_full Spectroscopy, equation of state and monopole percolation in lattice QED with two flavors
title_fullStr Spectroscopy, equation of state and monopole percolation in lattice QED with two flavors
title_full_unstemmed Spectroscopy, equation of state and monopole percolation in lattice QED with two flavors
title_short Spectroscopy, equation of state and monopole percolation in lattice QED with two flavors
title_sort spectroscopy, equation of state and monopole percolation in lattice qed with two flavors
topic Particle Physics - Theory
url https://dx.doi.org/10.1016/0550-3213(94)90630-0
http://cds.cern.ch/record/240431
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