Pion Excess, Nuclear Correlations, and the Interpretation of () Spin Transfer Experiments
arXiv:nucl-th/9709033 · doi:10.1103/PhysRevC.57.1210
Abstract
Conventional theories of nuclear interactions predict a net increase in the distribution of virtual pions in nuclei relative to free nucleons. Analysis of data from several nuclear experiments has led to claims of evidence against such a pion excess. These conclusions are usually based on a collective theory (RPA) of the pions, which may be inadequate. The issue is the energy dependence of the nuclear response, which differs for theories with strong NN correlations from the RPA predictions. In the present paper, information about the energy dependence is extracted from sum rules, which are calculated for such a correlated, noncollective nuclear theory. The results lead to much reduced sensitivity of nuclear reactions to the correlations that are responsible for the pion excess. The primary example is spin transfer, for which the expected effects are found to be smaller than the experimental uncertainties. The analysis has consequences for Deep Inelastic Scattering (DIS) experiments as well.
16 pages, LaTeX, no figures, submitted to Phys. Rev. C
Cited by in corpus (9)
- Global Study of Nuclear Structure Functions
- Nuclear Deep-Inelastic Lepton Scattering and Coherence Phenomena
- Study of the Fundamental Structure of Matter with an Electron-Ion Collider
- Hadrons in the Nuclear Medium
- High-Energy Hadron-Induced Dilepton Production from Nucleons and Nuclei
- Nuclear parton distributions and the Drell-Yan process
- On the dependence of the wave function of a bound nucleon on its momentum and the EMC effect
- Distorted wave impulse approximation analysis for spin observables in nucleon quasi-elastic scattering and enhancement of the spin-longitudinal response
- Performance of the neutron polarimeter NPOL3 for high resolution measurements