Quenched Chiral Perturbation Theory for Baryons
James N. Labrenz, Stephen R. Sharpe
Abstract
We develop chiral perturbation theory for baryons in quenched QCD. Quenching (the elimination of diagrams containing virtual quark loops) is achieved by extending the Lagrangian method of Bernard and Golterman, and is implemented in a theory where baryons are treated as fixed velocity sources. Our method requires that the octet baryons be represented by a three index tensor rather than by the usual matrix field. We calculate the leading non-analytic corrections to the masses of octet and decuplet baryons. In QCD these are proportional to Mπ3. We find that quenching alters the Mπ3 terms, but does not completely remove them. In addition, we find non-analytic contributions to baryon masses proportional to Mπ and Mπ2 Mπ. These terms, which are artifacts of quenching, dominate over the Mπ3 terms for sufficiently small quark masses. We also point out various pecularities of the quenched theory, most notably that the Δ baryon can decay (if kinematically allowed), in the sense that its two point function will be dominated at long Euclidean times by a nucleon plus pion intermediate state.
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