QCD sum rules for nucleons in nuclear matter

R. J. Furnstahl, David K. Griegel, and Thomas D. Cohen
Phys. Rev. C 46, 1507 – Published 1 October 1992
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Abstract

The self-energies of quasinucleon states in nuclear matter are studied using QCD sum-rule methods. A correlator of nucleon interpolating fields, evaluated in the finite-density ground state, is calculated using both an operator product expansion and a dispersion relation with a spectral ansatz. This approach relates the nucleon spectral properties (such as the quasinucleon self-energies) to matrix elements of QCD composite operators (condensates). With increasing nucleon density, large changes in Lorentz scalar and vector self-energies arise naturally; the self-energies are found to be comparable to those suggested by relativistic nuclear physics phenomenology. The most important phenomenological inputs are the baryon density and the value of the nucleon σ term divided by the average current mass of the light quarks. However, the successful comparison to relativistic phenomenology is sensitive to assumptions made about the density dependence of certain four-quark condensates.

  • Received 19 May 1992

DOI:https://doi.org/10.1103/PhysRevC.46.1507

©1992 American Physical Society

Authors & Affiliations

R. J. Furnstahl

  • Department of Physics, The Ohio State University, Columbus, Ohio 43210

David K. Griegel

  • Department of Physics and Nuclear Theory Center, Indiana University, Bloomington, Indiana 47405

Thomas D. Cohen

  • Department of Physics and Center for Theoretical Physics, University of Maryland, College Park, Maryland 20742

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Issue

Vol. 46, Iss. 4 — October 1992

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