Published May 2, 2008 | Version v1
Journal article

Nucleon Axial Charge in (2+1)-Flavor Dynamical-Lattice QCD with Domain-Wall Fermions

  • 1. Physics Department, University of Connecticut, Storrs, Connecticut, 06269-3046 (United States)
  • 2. RIKEN-BNL Research Center, Brookhaven National Laboratory, Upton, New York 11973 (United States)
  • 3. Thomas Jefferson National Accelerator Facility, Newport News, Virginia 23606 (United States)
  • 4. Center for Theoretical Physics, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139 (United States)
  • 5. Physics Department, Sokendai Graduate U. Adv. Studies, Hayama, Kanagawa 240-0193 (Japan)
  • 6. Institute of Particle and Nuclear Studies, KEK, Tsukuba, 305-0801 (Japan)
  • 7. Department of Physics, University of Tokyo, Hongo 7-3-1, Bunkyo-ku, Tokyo 113 (Japan)
  • 8. School of Physics, The University of Edinburgh, Edinburgh EH9 3JZ (United Kingdom)

Description

We present results for the nucleon axial charge gA at a fixed lattice spacing of 1/a=1.73(3) GeV using 2+1 flavors of domain wall fermions on size 163x32 and 243x64 lattices (L=1.8 and 2.7 fm) with length 16 in the fifth dimension. The length of the Monte Carlo trajectory at the lightest mπ is 7360 units, including 900 for thermalization. We find finite volume effects are larger than the pion mass dependence at mπ=330 MeV. We also find a scaling with the single variable mπL which can also be seen in previous two-flavor domain wall and Wilson fermion calculations. Using this scaling to eliminate the finite-volume effect, we obtain gA=1.20(6)(4) at the physical pion mass, mπ=135 MeV, where the first and second errors are statistical and systematic. The observed finite-volume scaling also appears in similar quenched simulations, but disappear when V≥(2.4 fm)3. We argue this is a dynamical quark effect

Additional details

Publishing Information

Journal Title
Physical Review Letters
Journal Volume
100
Journal Issue
17
Journal Page Range
p. 171602-171602.4
ISSN
0031-9007
CODEN
PRLTAO

Optional Information

Notes
(c) 2008 The American Physical Society
Collaborations
RBC+UKQCD Collaborations