- By:
- Garlea, Vasile O; Winn, Barry L; Narayanan, Narendirakumar; Yu, Dehong; Deng, Guochu; Mole, Richard; Sun, Dehui; Hester, James; Liu, Yun; Mcintyre, Garry; Robinson, Robert; Cao, Shixun
- Journal Name:
- Physical Review B
- Page Number:
- 74426
- Volume:
- 114
- Issue Number:
- 7
- Publication Date:
- August 26, 2026
- View DOI Listing:
- https://doi.org/10.1103/vdw3-fzrf
Abstract
A transition from crystal-field to spin wave excitations has been experimentally observed in PrFeO3 using inelastic neutron scattering. Theoretical modeling with density functional theory and the mean field random phase approximation successfully reproduces the experimental observations and allows extraction of the values for the various exchange interactions. The study reveals that the strong coupling between the two magnetic sublattices of Pr and Fe is the fundamental mechanism underlying the low-temperature Pr magnetism. This coupling, analogous to the Dicke cooperative interaction between atoms and photons, polarizes the Pr moments, enhances the Pr-Pr interactions, and contributes to the formation of a quasidoublet, leading to the transition from single-particle to collective excitations within the Pr sublattice. Furthermore, this coupling induces spin reorientation on the Fe sublattice. The manipulation of magnetic moments via spin waves is achievable through the coupling between different magnetic sublattices in a bulk material containing multiple magnetic ions.