The antiferromagnetic insulator Ca3FeRhO6: characterization and electronic structure calculations
V. Eyert, U. Schwingenschloegl, R. Fresard, A. Maignan, C. Martin, N. Nguyen, C. Hackenberger, T. Kopp
Abstract
We investigate the antiferromagnetic insulating nature of Ca3FeRhO6 both experimentally and theoretically. Susceptibility measurements reveal a Neel temperature TN = 20 K, and a magnetic moment of 5.3 muB/f. u., while Moessbauer spectroscopy strongly suggests that the Fe ions, located in trigonal prismatic sites, are in a 3+ high spin state. Transport measurements display a simple Arrhenius law, with an activation energy of 0.2 eV. The experimental results are interpreted with LSDA band structure calculations, which confirm the Fe 3+ state, the high-spin/low-spin scenario, the antiferromagnetic ordering, and the value for the activation energy.
Create a lesson
Related papers
Bound states, resonances, and their thermodynamic properties in pseudospin-1 systems with short-range impurities
E. V. Gorbar, Pavlo Sukhachov
Engineering tunable p-wave magnetism in antiferromagnetic bilayers
Yu-Han Lin, Jin-Wei Dong, Ziqiang Wang et al.
Higher-Winding Fractionalization
Kishore Iyer, Christophe Mora, Daniele Guerci
Green-function Zeros Encode Competing Mott and Charge-ordering Scales
Peizhi Mai, Philip W. Phillips
Chiral Color Ice: Exact Local Handedness Constraints and Möbius Zero Modes in Frustrated Magnets
Péter Kránitz, Yasir Iqbal, Karlo Penc
Pseudospin Dynamics of Charge Order
Ping Tang