arXiv · hep-ph/0303142
Nucleon-Nucleon Scattering under Spin-Isospin Reversal in Large-N_c QCD
Abstract
The spin-flavor structure of certain nucleon-nucleon scattering observables derived from the large N_c limit of QCD in the kinematical regime where time-dependent mean-field theory is valid is discussed. In previous work, this regime was taken to be where the external momentum was of order N_c which precluded the study of differential cross sections in elastic scattering. Here it is shown that the regime extends down to order N_c^{1/2} which includes the higher end of the elastic regime. The prediction is that in the large N_c limit, observables describable via mean-field theory are unchanged when the spin and isospin of either nucleon are both flipped. This prediction is tested for proton-proton and neutron-proton elastic scattering data and found to fail badly. We argue that this failure can be traced to a lack of a clear separation of scales between momentum of order N_c^{1/2} and N_c^1 when N_c is as small as three. The situation is compounded by an anomalously low particle production threshold due to approximate chiral symmetry.
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Thomas D. Cohen, Daniel C. Dakin. 2003-03-17. Nucleon-Nucleon Scattering under Spin-Isospin Reversal in Large-N_c QCD. https://doi.org/10.1103/physrevc.68.017001
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