Modeling Ultra-High-Energy Cosmic Rays propagation using the input from Configuration Interaction Shell Model
arXiv:2512.16329 · doi:10.1103/229n-z56z
Abstract
The dipole response of a nuclear system, characterized by its photon strength function (PSF), is a key ingredient of many applications of nuclear structure, ranging from nuclear reactor design and nuclear waste transmutation to astrophysical models of nucleosynthesis and stellar evolution. While the majority of those applications require the knowledge of PSF of mid-mass and heavy nuclei, there is now renewed interest in strength distributions of light nuclei in the framework of the PANDORA project, which aims at an understanding of the mass distribution of ultrahigh-energy cosmic radiation (UHECR).UHECR is of extragalactic origin and its interaction along the travel path is dominated by photoabsorption of cosmic background radiation boosted to the Giant Dipole Resonance (GDR) energy region in the center-of-mass system. Thus, systematic knowledge of the photoabsorption cross sections in light nuclei and of their subsequent particle decay is required. The purpose of this work is to enhance the database of available theoretical evaluations of PSF of light nuclei that are necessary in the studies of UHECR propagation. We employ the Configuration Interaction Shell Model (CI-SM) approach to provide predictions of dipole response for and -shell nuclei, with mass number between 7 and 40. Theoretical predictions are compared to available data and to existing predictions from phenomenological and microscopic models. Finally, the impact of using of CI-SM PSF on the predicted propagation of a Ca UHECR source is studied.
11 pages, 9 Figures
References in corpus (26)
- The Shell Model as Unified View of Nuclear Structure
- The r-process of stellar nucleosynthesis: Astrophysics and nuclear physics achievements and mysteries
- Origin of the Heaviest Elements: the Rapid Neutron-Capture Process
- Exotic modes of excitation in atomic nuclei far from stability
- Complete electric dipole response and the neutron skin in 208Pb
- Observation of a Large-scale Anisotropy in the Arrival Directions of Cosmic Rays above eV
- The neutron skin thickness from the measured electric dipole polarizability in Ni, Sn, and Pb
- Value of the axial-vector coupling strength in and decays: A review
- Finite amplitude method for the RPA solution
- Reference Database for Photon Strength Functions
- Pygmy Resonances and Neutron Skins
- Astronuclear Physics: a Tale of the Atomic Nuclei in the Skies
- Finite amplitude method for the quasi-particle-random-phase approximation
- Photodisintegration of Ultra-High-Energy Cosmic Rays revisited
- Mode-coupling and the pygmy dipole resonance in a relativistic two-phonon model
- Giant Dipole Resonance Parameters of Ground-State Photoabsorption: Experimental Values with Uncertainties
- Ab initio electromagnetic observables with the in-medium similarity renormalization group
- Low-lying dipole response in the stable Ca nuclei with the second random-phase approximation
- Perturbative Approach to Effective Shell-Model Hamiltonians and Operators
- Nuclear Physics Meets the Sources of the Ultra-High Energy Cosmic Rays
- What can be learnt from UHECR anisotropies observations? Paper I : large-scale anisotropies and composition features
- Structure and decay of the pygmy dipole resonance in 26Ne
- What can be learnt from UHECR anisotropies observations Paper II: intermediate-scale anisotropies
- Universal Effective Charges in the and Shells
- Electric dipole response of sd-shell nuclei within the Configuration-Interaction Shell Model approach
- M1 dipole strength from projected generator coordinate method calculations in the sd-shell valence space