Eikonal Approximation in Pseudoscalar Theory
Author(s) -
C. E. Carlson,
Thomas Neff
Publication year - 1971
Publication title -
physical review. d. particles, fields, gravitation, and cosmology/physical review. d. particles and fields
Language(s) - English
Resource type - Journals
eISSN - 1089-4918
pISSN - 0556-2821
DOI - 10.1103/physrevd.4.532
Subject(s) - physics , semiclassical physics , pion , pseudoscalar , effective field theory , isospin , quantum mechanics , quantum electrodynamics , quantum field theory , gauge theory , field theory (psychology) , mathematical physics , particle physics , quantum , meson
SLAC-PUB-867 March 1971 EIKONAL APPROXIMATION IN PSEUDOSCALAR THEORY* C. E. Carlson Enrico Fermi Institute University of Chicago, Chicago, Illinois 60637 and T. L. Neff Stanford Linear Accelerator Center Stanford University, Stanford, California 943 05 In an effort to extend the semiclassical intuitions developed in infrared dominated field theories (quantum electrodynamics, G3, etc. ) to field theories more likely characteristic of strong interactions, we have considered the high energy small momentum transfer limit of the ordinary linearly coupled fermion-pseudoscalar (nucleon-pion) interaction. In contrast with the infrared theories, we find (without using a cutoff) dominance of “hard” exchanged pions but with a dynamically forced pair-wise correlation resulting in an s-dependent effective potential appearing in the eikonal phase . The correspondence of the nonfixed-pole J’softff two-pion structure thus developed to a nonlocal generalization of Wentzel pair theory is made and the qualifications on the quantum field theory necessary to produce this semiclassical picture are explored. The role played by internal structure such as spin, isqspin, and chiral symmetry is particularly interesting. The asymptotic behavior of the theory is extracted and we find that the dominant N-N amplitude is s-channel helicity nonflip. (Submitted to Phys. Rev. ) * Work supported by the U. S. Atomic Energy Commission.
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