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The center of mass motion of short-range correlated nucleon pairs studied via the A(e,e'pp) reaction

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abstract

Short-Range Correlated (SRC) nucleon pairs are a vital part of the nucleus, accounting for almost all nucleons with momentum greater than the Fermi momentum (kF). A fundamental characteristic of SRC pairs is having large relative momenta as compared to kF, and smaller center-of-mass (c.m.) which indicates a small separation distance between the nucleons in the pair. Determining the c.m. momentum distribution of SRC pairs is essential for understanding their formation process. We report here on the extraction of the c.m. motion of proton-proton (pp) SRC pairs in Carbon and, for the first time in heavier and ansymetric nuclei: aluminum, iron, and lead, from measurements of the A(e,e'pp) reaction. We find that the pair c.m. motion for these nuclei can be described by a three-dimensional Gaussian with a narrow width ranging from 140 to 170 MeV/c, approximately consistent with the sum of two mean-field nucleon momenta. Comparison with calculations appears to show that the SRC pairs are formed from mean-field nucleons in specific quantum states.

fields

nucl-ex 1

years

2026 1

verdicts

UNVERDICTED 1

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Short-range correlated pair formation and nuclear shell structure

nucl-ex · 2026-06-05 · unverdicted · novelty 6.0

Electron scattering measurements on nuclei from 9Be to 197Au show SRC pair formation probability increases with A but with steeper slopes across shell-structure transitions, indicating long-range shell effects on short-range correlations.

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  • Short-range correlated pair formation and nuclear shell structure nucl-ex · 2026-06-05 · unverdicted · none · ref 14 · internal anchor

    Electron scattering measurements on nuclei from 9Be to 197Au show SRC pair formation probability increases with A but with steeper slopes across shell-structure transitions, indicating long-range shell effects on short-range correlations.