EuCo2P2: A Model Molecular-Field Helical Heisenberg Antiferromagnet
arXiv:1512.02958
Abstract
The Eu spins-7/2 in EuCo2P2 with the tetragonal ThCr2Si2-type structure have the prototypical noncollinear helical antiferromagnetic structure below the Neel temperature TN = 66.5 K as previously determined from single-crystal neutron diffraction measurements. The helix axis is along the c axis with the ordered moments aligned within the ab plane. Our recent formulation of molecular field theory (MFT) is found to quantitatively fit the anisotropic magnetic susceptibility of single-crystal EuCo2P2 at T < TN with a helix turn angle comparable to the neutron diffraction value. The experimental and MFT magnetic heat capacities at T < TN are also in good agreement. Values of the Heisenberg exchange interactions between the Eu spins-7/2 within the J0-Jz1-Jz2 MFT model are derived. The results demonstrate the robust applicability of the MFT to model the thermodynamic properties of noncollinear Heisenberg antiferromagnets.
5 pages, 5 figures
Cited by in corpus (9)
- Magnetic Structure and Magnetization of Helical Antiferromagnets in High Magnetic Fields Perpendicular to the Helix Axis at Zero Temperature
- Antiferromagnetism in semiconducting SrMn2Sb2 and BaMn2Sb2 single crystals
- A-type antiferromagnetic order and magnetic phase diagram of the trigonal Eu spin-7/2 triangular-lattice compound EuSn2As2
- Enhanced moments of Eu in single crystals of the metallic helical antiferromagnet EuCo{2-y}As2
- NMR Determination of an Incommensurate Helical Antiferromagnetic Structure in EuCo2As2
- Anomalous Composition-Induced Crossover in the Magnetic Properties of the Itinerant-Electron Antiferromagnet Ca{1-x}Sr{x}Co{2-y}As{2}
- NMR studies of the incommensurate helical antiferromagnet EuCo2P2 : determination of the antiferromagnetic propagation vector
- Magnetic structure and magnetization of z-axis helical Heisenberg antiferromagnets with XY anisotropy in high magnetic fields transverse to the helix axis at zero temperature
- Molecular-field-theory fits to magnetic susceptibilities of antiferromagnetic GdCu2Si2, CuO, LiCrO2, and alpha-CaCr2O4 single crystals below their Neel temperatures