Magnetic Order and Magneto-Elasticity in the Electronic Excitations of Gd--MAX
arXiv:2408.02436 · doi:10.1103/PhysRevB.110.214412
Abstract
We report the investigation of electronic collective modes in rare-earth-based magnets (MoRE)AlC (also known as RE--MAX phases), where RE=Gd, Yb, and Dy, using single crystal samples. A detailed investigation of the Raman spectra of Gd--MAX samples at low temperatures, with a focus on the phonon behavior in relation to the antiferromagnetic (AFM) phase transition at 26 K is presented. Significant shifts in the central frequencies of several low-frequency phonon modes were observed below 25 K, correlating with the Néel transition. Integrated Raman intensity measurements indicated a reduction in the electronic background below the AFM transition temperature, suggesting the opening of a magnetic gap. Our analysis showed no new phonon modes. Therefore, we do not see any indication of a Brillouin zone folding of phonon mode to the -point in our measurement. However, the hardening of all phonon modes at low temperatures points to a strong spin-phonon coupling effect. Using a temperature-dependent model of phonon frequency, we determined the spin-phonon coupling constant to be less than 0.1 cm for all frequencies, which is of the same order of magnitude as found in other antiferromagnetic materials such as MnF and FeF with and , respectively, but significantly lower than that of with .
9 pages, 13 figures