Implications for (d,p) reaction theory from nonlocal dispersive optical model analysis of Ca 40 (d,p) Ca 41

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Abstract

The nonlocal dispersive optical model (NLDOM) nucleon potentials are used for the first time in the adiabatic analysis of a (d,p) reaction to generate distorted waves both in the entrance and exit channels. These potentials were designed and fitted by Mahzoon et al. [Phys. Rev. Lett. 112, 162503 (2014)PRLTAO0031-900710.1103/PhysRevLett.112.162503] to constrain relevant single-particle physics in a consistent way by imposing the fundamental properties, such as nonlocality, energy-dependence and dispersive relations, that follow from the complex nature of nuclei. However, the NLDOM prediction for the Ca40(d,p)Ca41 cross sections at low energy, typical for some modern radioactive beam ISOL (isotope separation online) facilities, is about 70% higher than the experimental data despite being reduced by the NLDOM spectroscopic factor of 0.73. This overestimation comes most likely either from insufficient absorption or due to constructive interference between ingoing and outgoing waves. This indicates strongly that additional physics arising from many-body effects is missing in the widely used current versions of (d,p) reaction theories.

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Waldecker, S. J., & Timofeyuk, N. K. (2016). Implications for (d,p) reaction theory from nonlocal dispersive optical model analysis of Ca 40 (d,p) Ca 41. Physical Review C, 94(3). https://doi.org/10.1103/PhysRevC.94.034609

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