Evidence for Local Moment by Electron Spin Resonance Study on Polycrystalline LaFeAsOF (x=0 and 0.13)
arXiv:0811.2567 · doi:10.1103/PhysRevB.79.115121
Abstract
The temperature dependence of electron spin resonance (ESR) was studied in the oxypnictide superconductors LaFeAsOF (x = 0.0 and 0.13). In the samples, the ESR signal indicates that the g factor and peak-to-peak linewidth strongly depend on temperature, especially at low temperatures. It indicates a strong coupling picture with existence of local moment. The dependence mentioned above gradually attenuates, and tends to saturation around room-temperature. This behavior could be ascribed to "bottleneck" effect due to coupling of local moment and itinerant electron. In addition, a Curie-Weiss like behavior is also observed in temperature dependent integral intensity for the two samples. Our results strongly support the existence of local moments in these materials while its origin is still unclear. The results also indicate strong magnetic frustration in this system, and magnetic fluctuation mechanism for superconductivity is suggested.
5 pages, 5 figures
References in corpus (26)
- Superconductivity at 38 K in the iron arsenide (Ba1-xKx)Fe2As2
- Magnetic Order versus superconductivity in the Iron-based layered La(O1-xFx)FeAs systems
- Superconductivity at 43 K in Samarium-arsenide Oxides
- LaFeAsOF: A low carrier density superconductor near itinerant magnetism
- Superconductivity at 41 K and its competition with spin-density-wave instability in layered CeOFFeAs
- Magnetic order in BaFe2As2, the parent compound of the FeAs based superconductors in a new structural family
- Structural and magnetic phase diagram of CeFeAsO1-xFx and its relationship to high-temperature superconductivity
- Superconductivity and Phase Diagram in the Iron-based Arsenic-oxides ReFeAsO1-delta (Re = rare earth metal) without F-Doping
- Competing Orders and Spin-Density-Wave Instability in La(OF)FeAs
- Theory of Electron Nematic Order in LaOFeAs
- Origin of the ~150 K Anomaly in LaOFeAs; Competing Antiferromagnetic Superexchange Interactions, Frustration, and Structural Phase Transition
- Correlated electronic structure of LaOFeAs
- A minimal two-band model for the superconducting Fe-pnictides
- Ising and Spin orders in Iron-based Superconductors
- Coexistence of the spin-density-wave and superconductivity in the (Ba,K)Fe2As2
- Theory of magnetic excitations in iron-based layered superconductors
- Electron-Hole Symmetry and Magnetic Coupling in Antiferromagnetic LaOFeAs
- Proximity of antiferromagnetism and superconductivity in LaOFFeAs: effective Hamiltonian from ab initio studies
- Antiferromagnetic superexchange interactions in LaOFeAs
- Iron-based layered superconductor LaOFFeAs: an antiferromagnetic semimetal
- Spin-triplet p-wave pairing in a 3-orbital model for iron pnictide superconductors
- Different resistivity response to spin density wave and superconductivity at 20 K in
- Structure and Magnetic Order in the NdFeAs(O,F) Superconductor System
- Lattice and Magnetic structures of PrFeAsO, PrFeAsO0.85F0.15 and PrFeAsO0.85
- Ferromagnetic spin fluctuation in LaFeAsO1-xFx
- Enhanced Orbital Degeneracy in Momentum Space for LaOFeAs