Comprehensive test of the Brink-Axel hypothesis in the energy region of the pygmy dipole resonance
arXiv:2012.11956 · doi:10.1103/PhysRevLett.127.182501
Abstract
The validity of the Brink-Axel hypothesis, which is especially important for numerous astrophysical calculations, is addressed for 116,120,124Sn below the neutron separation energy by means of three independent experimental methods. The -ray strength functions (GSFs) extracted from primary -decay spectra following charged-particle reactions with the Oslo method and with the Shape method demonstrate excellent agreement with those deduced from forward-angle inelastic proton scattering at relativistic beam energies. In addition, the GSFs are shown to be independent of excitation energies and spins of the initial and final states. The results provide a critical test of the generalized Brink-Axel hypothesis in heavy nuclei, demonstrating its applicability in the energy region of the pygmy dipole resonance.
6 pages, 4 figures, Phys. Rev. Lett. (in press)
References in corpus (13)
- Reference Database for Photon Strength Functions
- Analysis of possible systematic errors in the Oslo method
- Astronuclear Physics: a Tale of the Atomic Nuclei in the Skies
- Low-lying dipole response in the Relativistic Quasiparticle Time Blocking Approximation and its influence on neutron capture cross sections
- The SiRi Particle-Telescope System
- Low-energy electric dipole response in 120Sn
- Low-energy dipole strength in 112,120Sn
- Electric and magnetic dipole strength in 112,114,116,118,120,124Sn
- Independent Normalization for -ray Strength Functions: The Shape Method
- Modification of the Brink-Axel Hypothesis for High Temperature Nuclear Weak Interactions
- Experimental constraints on the -ray strength function in Zr using partial cross sections of the Y(p,)Zr reaction
- Evolution of the dipole polarizability in the stable tin isotope chain
- The energy response of the Oslo Scintillator Array OSCAR