Stability of the doped antiferromagnetic state of the t-t'-Hubbard model
arXiv:cond-mat/0112438 · doi:10.1103/PhysRevB.65.134414
Abstract
The next-nearest-neighbour hopping term t' is shown to stabilize the AF state of the doped Hubbard model with respect to transverse perturbations in the order- parameter by strongly suppressing the intraband particle-hole processes. For a fixed sign of t', this stabilization is found to be significantly different for electron and hole doping, which qualitatively explains the observed difference in the degree of robustness of the AF state in the electron-doped (Nd_{2-x}Ce_{x}CuO_{4}) and hole-doped (La_{2-x}Sr_{x}CuO_{4}) cuprates. The t'-U phase diagram is obtained for both signs of the t' term, showing the different regions of stability and instability of the doped antiferromagnet. Doping is shown to suppress the t'-induced frustration due to the competing interaction J'. A study of transverse spin fluctuations in the metallic AF state reveals that the decay of magnons into particle-hole excitations yields an interesting low-energy result Γ\sim ωfor magnon damping.
10 pages, 8 figures
Cited by in corpus (14)
- Progress and perspectives on the electron-doped cuprates
- Ferromagnetism in a dilute magnetic semiconductor -- Generalized RKKY interaction and spin-wave excitations
- Finite- induced competing interactions, frustration, and quantum phase transition in a triangular-lattice antiferromagnet
- Phase diagrams of the 2D t-t'-U Hubbard model from an extended mean field method
- Spin-wave spectrum in La2CuO4 -- double occupancy and competing interaction effects
- Role of Hund's coupling in stabilization of the (0,pi) ordered SDW state within the minimal two-band model for iron pnictides
- Spin waves in a band ferromagnet: spin-rotationally symmetric study with self-energy and vertex corrections
- Self-energy corrections in an antiferromagnet -- interplay of classical and quantum effects on quasiparticle dispersion
- Spin waves in the (0,pi) and (0,pi,pi) ordered SDW states of the t-t' Hubbard model: Application to doped iron pnictides
- The role of orbital order in the stabilization of the ordered magnetic state in a minimal two-band model for iron pnictides
- Spin-charge and spin-orbital coupling effects on spin dynamics in ferromagnetic manganites
- Stability of the Antiferromagnetic State in the Electron Doped Iridates
- Transient dynamics and quantum phase diagram for the square lattice Rashba-Hubbard model at arbitrary hole doping
- Non-resonant Raman response of inhomogeneous structures in the electron doped Hubbard model