Spin-charge separation in the two-dimensional Hubbard andt-Jmodels at low electronic density
- 1 July 1994
- journal article
- research article
- Published by American Physical Society (APS) in Physical Review B
- Vol. 50 (1) , 655-658
- https://doi.org/10.1103/physrevb.50.655
Abstract
The spin- and density-correlation functions of the two-dimensional Hubbard model at low electronic density 〈n〉 are calculated in the ground state by using the power method, and at finite temperatures by using the quantum Monte Carlo technique. Both approaches produce similar results, which are in close agreement with numerical and high-temperature-expansion results for the two-dimensional t-J model. Using perturbative approximations, we show that the examination of the density-correlation function alone is not enough to support recent claims in the literature that suggested spin and charge separation in the low electronic density regime of the t-J model.Keywords
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This publication has 15 references indexed in Scilit:
- Transport properties in the Tomonaga-Luttinger liquidPhysical Review Letters, 1993
- New phase in the one-dimensionalt-JmodelPhysical Review B, 1993
- Gauge theory of the normal state of high-superconductorsPhysical Review B, 1992
- Properties of One-Dimensional Strongly Correlated ElectronsProgress of Theoretical Physics Supplement, 1992
- Phase diagram of the one-dimensionalt-JmodelPhysical Review Letters, 1991
- Singular forward scattering in the 2D Hubbard model and a renormalized Bethe ansatz ground statePhysical Review Letters, 1990
- Correlation functions in the one-dimensionalt-JmodelPhysical Review Letters, 1990
- ‘‘Luttinger-liquid’’ behavior of the normal metallic state of the 2D Hubbard modelPhysical Review Letters, 1990
- General Relation of Correlation Exponents and Spectral Properties of One-Dimensional Fermi Systems: Application to the AnisotropicHeisenberg ChainPhysical Review Letters, 1980
- Remarks on Bloch's Method of Sound Waves applied to Many-Fermion ProblemsProgress of Theoretical Physics, 1950