Magnetic Structure and Properties of the S = 5/2 Triangular Antiferromagnet -NaFeO
arXiv:cond-mat/0703195 · doi:10.1103/PhysRevB.76.024420
Abstract
The magnetic properties of -NaFeO are studied by neutron diffraction and magnetization measurements. An ordered phase with spins aligned along the b axis exists at low temperatures (T < 4 K). At intermediate temperatures (4 K < T < 11 K), the system passes through an incommensurate ordered phase before transforming into a short range ordered state at higher temperatures that persists up to at least 50 K. Although the short range ordering does not persist to room temperature according to neutron diffraction, the magnetic susceptibility does not follow Curie-Weiss behavior, even up to 320 K. This rich magnetic behavior can be understood qualitatively as a competition between different magnetic exchange interactions that are similar in magnitude. The delicate balance between these interactions makes -NaFeO a candidate for more detailed theoretical work to understand magnetic behavior in frustrated magnetic systems.
Submitted to Phys Rev B, 7 pages, 8 figures
References in corpus (1)
Cited by in corpus (9)
- Universal quantum computation based on nanoscale skyrmion helicity qubits in frustrated magnets
- Spin phonon induced colinear order and magnetization plateaus in triangular and kagome antiferromagnets. Applications to CuFeO_2
- Magnon-Skyrmion Hybrid Quantum Systems: Tailoring Interactions via Magnons
- Nonlocal Landau theory of the magnetic phase diagram of highly frustrated magnetoelectric CuFeO
- Skyrmion Helicity: Quantization and Quantum Tunneling Effects
- Rich magnetoelectric phase diagrams of multiferroic single-crystal alpha-NaFeO2
- Classical Heisenberg and planar spin models on the windmill lattice
- Hybrid quantum surface acoustic wave with skyrmion qubit for quantum information processing
- Impurity-induced moment freezing in NaFeRuO