Antiferromagnetic Stacking of Ferromagnetic Layers and Doping Controlled Phase Competition in CaSrCoAs
arXiv:1904.06444 · doi:10.1103/PhysRevB.100.024415
Abstract
In search of a quantum phase transition between the two-dimensional (D) ferromagnetism of CaCoAs and stripe-type antiferromagnetism in SrCoAs, we rather find evidence for D magnetic frustration between magnetic square Co layers. We present neutron diffraction data for CaSrCoAs that reveal a sequence of -dependent magnetic transitions which involve different stacking of D ferromagnetically-aligned layers with different magnetic anisotropy. We explain the -dependent changes to the magnetic order by utilizing classical analytical calculations of a D Heisenberg model where single-ion magnetic anisotropy and frustration of antiferromagnetic nearest- and next-nearest-layer exchange are all composition dependent.
References in corpus (9)
- High-temperature superconductivity in iron-based materials
- Neutron Studies of the Iron-based Family of High TC Magnetic Superconductors
- Renormalized behavior and proximity to a magnetic quantum critical point in BaCoAs
- Unified Molecular Field Theory for Collinear and Noncollinear Heisenberg Antiferromagnets
- Metamagnetic transition in CaSrCoAs( = 0 and 0.1) single crystals
- Effective One-Dimensional Coupling in the Highly-Frustrated Square-Lattice Itinerant Magnet CaCoAs
- Crystallography and Physical Properties of BaCo2As2, Ba{0.94}K{0.06}Co2As2 and Ba{0.78}K{0.22}Co2As2
- Anomalous Composition-Induced Crossover in the Magnetic Properties of the Itinerant-Electron Antiferromagnet Ca{1-x}Sr{x}Co{2-y}As{2}
- Suppression of magnetic order in CaCoAs with Fe substitution: Magnetization, neutron diffraction, and x-ray diffraction studies of Ca(CoFe)As