Systematic numerical study of spin-charge separation in one dimension
M. G. Zacher, E. Arrigoni, W. Hanke, J. R. Schrieffer

TL;DR
This paper numerically investigates spin-charge separation in a one-dimensional Hubbard model, demonstrating the separation over a broad momentum range and proposing a method for potential extension to two dimensions.
Contribution
The study introduces a combined numerical approach using Quantum-Monte Carlo data and Luttinger-model fitting to identify spin-charge separation across a wide momentum spectrum.
Findings
Spin-charge separation observed beyond linear dispersion region.
Spectral function peaks correspond to separate spin and charge excitations.
Method proposed for extending spin-charge separation detection to two dimensions.
Abstract
The problem of spin-charge separation is analyzed numerically in the metallic phase of the one-band Hubbard model in one dimension by studying the behavior of the single-particle Green's function and of the spin and charge susceptibilities. We first analyze the Quantum-Monte Carlo data for the imaginary-time Green's function within the Maximum Entropy method in order to obtain the spectral function at real frequencies. For some values of the momentum sufficiently away from the Fermi surface two separate peaks are found, which can be identified as charge and spin excitations. In order to improve our accuracy and to be able to extend our study to a larger portion of the Brillouin zone, we also fit our data with the imaginary-time Green's function obtained from the Luttinger-model solution with two different velocities as fitting parameters. The excitation energies associated with these…
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