Quantized Lattice Dynamic Effects on the Peierls transition of the Extended Hubbard Model
arXiv:1010.5920 · doi:10.1103/PhysRevB.83.195105
Abstract
The density matrix renormalization group method is used to investigate the Peierls transition for the extended Hubbard model coupled to quantized phonons. Following our earlier work on spin-Peierls systems, we use a phonon spectrum that interpolates between a gapped, dispersionless (Einstein) limit to a gapless, dispersive (Debye) limit to investigate the entire frequency range. A variety of theoretical probes are used to determine the quantum phase transition, including energy gap crossing, a finite size scaling analysis, and bipartite quantum entanglement. All these probes indicate that a transition of Berezinskii-Kosterlitz-Thouless-type is observed at a non-zero electron-phonon coupling, , for a non-vanishing electron-electron interaction. An extrapolation from the Einstein limit to the Debye limit is accompanied by an increase in for a fixed optical () phonon gap. We therefore conclude that the dimerized ground state is more unstable with respect to Debye phonons, with the introduction of phonon dispersion renormalizing the effective electron-lattice coupling for the Peierls-active mode. By varying the Coulomb interaction, , we observe a generalized Peierls transition, intermediate to the uncorrelated () and spin-Peierls () limits, where is the Hubbard Coulomb parameter. Using the extended Hubbard model with Debye phonons, we investigate the Peierls transition in \textit{trans}-polyacetylene and show that the transition is close to the critical regime.
References in corpus (2)
Cited by in corpus (12)
- Excitation spectra and correlation functions of quantum Su-Schrieffer-Heeger models
- Precise Determination of Quantum Critical Points by the Violation of the Entropic Area Law
- Bipolaron liquids at strong Peierls electron-phonon couplings
- Nature of ground states in one-dimensional electron-phonon Hubbard models at half-filling
- Phonon-mediated repulsion, sharp transitions and (quasi)self-trapping in the extended Peierls-Hubbard model
- Density waves in strongly correlated quantum chains
- Entanglement Entropy of the Low-Lying Excited States and Critical Properties of an Exactly Solvable Two-Leg Spin Ladder with Three-Spin Interactions
- Ground state and spectral properties of the doped one-dimensional optical Hubbard-Su-Schrieffer-Heeger model
- Attractive Su-Schrieffer-Heeger-Hubbard Model on a Square Lattice Away from Half-Filling
- Optical phonons for Peierls chains with long-range Coulomb interactions
- Anomalous isotope Effect in d-wave superconductors on the square lattice
- Insulating and metallic phases in the one-dimensional Hubbard-Su-Schrieffer-Heeger model: Insights from a backflow-inspired variational wave function