Dynamical Properties of Spin-Orbital Chains in a Magnetic Field
arXiv:cond-mat/0005526 · doi:10.1103/PhysRevB.63.024423
Abstract
The excitation spectrum of the one-dimensional spin-orbital model in a magnetic field is studied, using a recently developed dynamical density matrix renormalization group technique. The method is employed on chains with up to 80 sites, and examined for test cases such as the spin-1/2 antiferromagnetic Heisenberg chain, where the excitation spectrum is known exactly from the Bethe Ansatz. In the spin-orbital chain, the characteristic dynamical response depends strongly on the model parameters and the applied magnetic field. The coupling between the spin and orbital degrees of freedom is found to influence the incommensuration at finite magnetizations. In the regions of the phase diagram with only massive spin and orbital excitations, a finite field is required to overcome the spin gap. An incommensurate orbital mode is found to become massless in this partially spin-polarized regime, indicating a strong coupling between the two degrees of freedom. In the critical region with three elementary gapless excitations, a prominent particle-hole excitation is observed at higher energies, promoted by the biquadratic term in the model Hamiltonian of the spin-orbital chain.
RevTex, 20 pages with 18 eps figures
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Cited by in corpus (8)
- The density-matrix renormalization group
- New Trends in Density Matrix Renormalization
- Lanczos algorithm with Matrix Product States for dynamical correlation functions
- Field-driven phase transitions in a quasi-two-dimensional quantum antiferromagnet
- Fractionalization, entanglement, and separation: understanding the collective excitations in a spin-orbital chain
- Elementary excitations in one-dimensional spin-orbital models: neutral and charged solitons and their bound states
- Phase transitions in the boson-fermion resonance model in one dimension
- Response functions in multicomponent Luttinger liquids