Lattice QCD with Eight Degenerate Quark Flavors
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1 Lattice QCD with Eight Degenerate Quark Flavors Xiao-Yong Jin, Robert D. Mawhinney Columbia University Lattice 2008
2 Outline Introduction Simulations and results Preparations Results Conclusion and outlook
3 Phase diagram [Dennis D. Dietrich, Francesco Sannino, arxiv:hep-ph/ v1]
4 Recent works on the lattice SU(2), 2 flavors in symmetric representation Simon Catterall, Francesco Sannino, arxiv: v1 [hep-lat] SU(2), 2 flavors in adjoint representation. Luigi Del Debbio, Agostino Patella, Claudio Pica, arxiv: v1 [hep-lat] Running of coupling using Schrodinger functional. Thomas Appelquist, George T. Fleming, Ethan T. Neil, Phys. Rev. Lett. 100, (2008), (arxiv: v2 [hep-ph]) Finite temperature phase transition of 8 flavors using Asqtad. Albert Deuzeman, Maria Paola Lombardo, Elesabetta Pallante, arxiv: v2 [hep-lat] And much more in this conference.
5 Outline Introduction Simulations and results Preparations Results Conclusion and outlook
6 Algorithm test in 4 flavors Comparison between RHMC and Φ algorithm using naive staggered fermion, Wilson gauge, N f = 4, m q = 0.015, β = 5.4 Algorithm Φ RHMC Plaquette (14) (30) ψψ (1) (19) m π (40) (36) m π (35) 0.361(20) m ρ (59) 0.481(10) m ρ (84) 0.459(40) Results of Φ algorithm are from ChengZhong Sui, Ph. D. thesis, Columbia University, 2000.
7 DBW2 improved gauge action More dynamic flavors on the lattice make the gauge field rougher. DBW2 smooths out the gauge field. DBW2 with naive staggered fermion runs fast.
8 Effect on taste symmetry breaking Quenched results from M. Cheng, et. al., arxiv:hep-lat/ v1. Dark blue symbol is dynamic result from staggered DBW2 action with 2 flavors.
9 Outline Introduction Simulations and results Preparations Results Conclusion and outlook
10 Simulation Details β Size m q Trajectories ψψ m ρ r (27) 0.812(11) 4.39(56) (13) 0.619(13) 5.05(78) (67) (30) 4.126(96) (11) (28) 5.10(11) (20) (38) 3.19(18) (26) 0.803(12) 3.68(15) (14) (69) 3.120(48) (12) (93) 3.793(97) (16) (73) 4.716(92) (20) 1.258(17) 2.197(52) (28) 1.176(19) 2.350(47) (37) 0.993(14) 2.849(51) (39) 1.022(17) 2.830(48) Trajectory length is 0.5 in MD unit. Measurements are done every 10 trajectories. All simulation of lattice size and some of are done on NYBlue(BlueGene/L).
11 Evolution of ψψ, β = 0.58, m q = Staggered DBW2, β = 0.58, m q = 0.015, 8 flavors, ψψ ordered start disordered start
12 Evolution of ψψ, β = 0.54, m q = Staggered DBW2, β = 0.54, m q = 0.01, 8 flavors ordered start ordered start disordered start 0.15 ψψ
13 Heavy quark potential Heavy quark potential measured on ensemble of β = 0.56, m q = 0.008, with lattice size of V (r) r 0 r r
14 r 0 from heavy quark potential 7 6 β = 0.58 β = 0.56 β = r m q
15 r 1 from heavy quark potential β = 0.58 β = 0.56 β = r m q
16 Chiral condensate Chiral extrapolation β = 0.58 β = 0.56 β = ψψ m q
17 Chiral condensate a 2 dependence Unrenormalized chiral condensate in naive linear extrapolation ψψ r (a/r 1 ) 2
18 Goldstone Pion mass Chiral extrapolation β = 0.58 β = 0.56 β = m 2 π m q
19 Non-Goldstone Pion mass Chiral extrapolation β = 0.58 β = 0.56 β = m 2 π m q Scalar channel of the meson propagators. Corresponds to r σ sσ 123 = 1 + +
20 Rho mass Chiral extrapolation β = 0.58 β = 0.56 β = mρ m q
21 Rho mass a 2 dependence mρr (a/r 1 ) 2
22 Conclusion and outlook Conclusion System behaves as in normal chiral symmetry breaking phase. ψψ obtains non zero value in the chiral limit and continuum limit. Goldstone Pion mass vanishes in the chiral limit. Outlook Deal with chiral logarithms, if high quality results are needed. Investigate rapid transition from β = 0.56 to β = Explore into the proposed conformal window (More flavors!).
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