paper

Mean field magnetism and spin frustration in a double perovskite oxide with compositional complexity

arXiv:2511.02485

Abstract

The rise of high-entropy oxides as a major functional materials design principle in recent years has prompted us to investigate how compositional disorder affects long-range magnetic ordering in double perovskite oxides. Since ferromagnetic insulators are emerging as an important platform for lossless spintronics, we consider the NiMnO ( : rare-earth) family and investigate single-crystalline films of (LaNdSmGdY)NiMnO grown on SrTiO (001) substrates in this work. Despite configurational disorder and high cationic size variance at the site, the material exhibits robust ferromagnetic ordering with a Curie temperature () of approximately 150 K. This is consistent with the expectation based on consideration of the average ionic radii of the rare-earth () sites in the bulk NiMnO. Below , Raman spectroscopy measurement finds a deviation from anharmonic behavior, where the phonon renormalization aligns with a mean-field approximation of spin-spin correlation. At lower temperature, magnetic ions also contributed to the magnetic behavior and the system displays a reentrant spin-glass-like behavior. This study demonstrates that while a mean-field approach serves as a viable starting point for predicting the long-range transition temperature, microscopic details of the complex magnetic interactions are essential for understanding the low-temperature phase.

21 pages, 6 figures