nuclear physics

Configuration crossing, shape evolution, and odd-proton polarization in yttrium isotopes

arXiv:2607.27921

summary

The paper investigates how an unpaired proton influences the rapid structural changes in odd‑mass yttrium isotopes (¹⁹¹‑¹⁰¹Y) using a configuration‑mixing Bose‑Fermi model, revealing a crossing of normal and intruder configurations near neutron number N = 60 and introducing a differential charge‑radius polarization observable to isolate odd‑proton effects.

Abstract

The odd-mass Y isotopes provide a testing ground for how an unpaired proton modifies an abrupt collective structural evolution. A configuration-mixing Bose-Fermi description shows that the lowest negative- and positive-parity states undergo a crossing of normal and intruder configurations near neutron number , intertwined with an evolution from weak coupling of a quasiparticle to a near-spherical core toward strong coupling to a deformed core. To isolate the role of the odd proton, a differential charge-radius polarization observable is introduced as the difference between the isotope shifts of the odd-mass chain with those of the corresponding even-even cores. Its pronounced peak at and sign reversal at reveal a localized modification of the core evolution in the critical region. Energy levels, wave-function content, electromagnetic moments, two-neutron separation energies, and coherent-state energy surfaces support this interpretation.

8 pages, 5 figures, 1 table

Topics & keywords

#yttrium isotopes#odd-mass nuclei#configuration mixing#shape evolution#charge radius polarizationBose-Fermi descriptionintruder configurationneutron number N=60differential charge-radius polarizationtwo-neutron separation energyelectromagnetic moments