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arXiv:2311.14525·v2·Nuclear Experiment

Systematics of the low-energy electric dipole strength in the Sn isotopic chain

M. Markova (1)🇳🇴 · P. von Neumann-Cosel (2)🇩🇪 · E. Litvinova (3,4,5) ((1) Department of Physics, University of Oslo, Oslo, Norway, (2) Institut fuer Kernphysik, Technische Universitaet Darmstadt, Darmstadt, Germany, (3) Department of Physics, Western Michigan University, Kalamazoo, Michigan, USA, (4) National Superconducting Cyclotron Laboratory, Michigan State University, East Lansing, Michigan, USA, (5) GANIL, CEA/DRF-CNRS/IN2P3, Caen, France)🇺🇸

Abstract

We present a systematic study of the mass dependence of the low-energy electric dipole strength (LEDS) in Sn isotopes in the range based on data obtained with the Oslo method and with relativistic Coulomb excitation in forward-angle () scattering. The combined data cover an energy range of MeV which permits, with minimal assumptions, a decomposition of the total strength into the contribution from the low-energy tail of the isovector giant dipole resonance (IVGDR) and possible resonance-like structures on top of it. In all cases, a resonance peaked at about 8.3 MeV is observed, exhausting an approximately constant fraction of the Thomas-Reiche-Kuhn (TRK) sum rule with a local maximum at Sn which might be related to shell structure effects. For heavier isotopes () a consistent description of the data requires the inclusion of a second resonance centered at 6.5 MeV, representing the isovector response of the pygmy dipole resonance (PDR). Its strength corresponds to a small fraction of the total LEDS only and shows an approximately linear dependence on mass number. The experimental results are also compared to ab initio-based microscopic calculations to investigate the importance of an inclusion of quasiparticle vibration coupling (qPVC) for a realistic description of the LEDS. A possible interpretation of the experimentally observed two-bump structure is given.

Comments: 13 pages, 6 figures

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