Return
Dynamical density-matrix renormalization-group method
DOI:10.1103/PhysRevB.66.045114.png)
Abstract
En 中文
A density-matrix renormalization-group (DMRG) method for calculating dynamical properties and excited states in low-dimensional lattice quantum many-body systems is presented. The method is based on an exact variational principle for dynamical correlation functions and the excited states contributing to them. This dynamical DMRG is an alternate formulation of the correction vector DMRG but is both simpler and more accurate. The finite-size scaling of spectral functions is discussed and a method for analyzing the scaling of dense spectra is described. The key idea of the method is a size-dependent broadening of the spectrum. The dynamical DMRG and the finite-size scaling analysis are demonstrated on the optical conductivity of the one-dimensional Peierls-Hubbard model. Comparisons with analytical results show that the spectral functions of infinite systems can be reproduced almost exactly with these techniques. The optical conductivity of the Mott-Peierls insulator is investigated and it is shown that its spectrum is qualitatively different from the simple spectra observed in Peierls (band) insulators and one-dimensional Mott-Hubbard insulators.
Keywords:
DIMENSIONAL MOTT INSULATORS
OPTICAL CONDUCTIVITY
HUBBARD-MODEL
ABSORPTION
CHAIN
AI Summary
Key information extracted from the uploaded paper, including a brief overview, abstract, background, key highlights, visual analysis, and future outlook.
Journal
IF:
3.7
Papers:
15.4W
Citations:
41.0W
Organization
No organization information available
Cited Papers
Symmetrized density-matrix renormalization-group method for excited states of Hubbard models
PHYSICAL REVIEW B
IF3.7
Dynamical correlation functions using the density matrix renormalization group
PHYSICAL REVIEW B
IF3.7
Ranibizumab treatment patterns in prior ranibizumab-treated neovascular age-related macular degeneration patients: Real-world outcomes from the LUMINOUS study
PLOS ONE
IF0
Biochar-supported magnetic noble metallic nanoparticles for the fast recovery of excessive reductant during pollutant reduction
Chemosphere
IF0

