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The t-t'-J model in one dimension using extremely correlated Fermi liquid theory and time dependent density matrix renormalization group

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abstract

We study the one dimensional t-t'-J model for generic couplings using two complementary theories, the extremely correlated Fermi liquid theory and time-dependent density matrix renormalization group over a broad energy scale. The two methods provide a unique insight into the strong momentum dependence of the self-energy of this prototypical non-Fermi liquid, described at low energies as a Tomonaga-Luttinger liquid. We also demonstrate its intimate relationship to spin-charge separation, i.e. the splitting of Landau quasiparticles of higher dimensions into two constituents, driven by strong quantum fluctuations inherent in one dimension. The momentum distribution function, the spectral function, and the excitation dispersion of these two methods also compare well.

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2026 1

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UNVERDICTED 1

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  • Overview of the Theory of Extremely Correlated Fermi Liquids cond-mat.str-el · 2026-06-11 · unverdicted · none · ref 33 · internal anchor

    ECFL theory accounts for density-dependent quasilinear resistivity, small quasiparticle weight, and emergent low-T scales in single-layer high-Tc systems via the t-J model.