71 research outputs found

    Spectral properties of the planar t-J model

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    The single-particle spectral functions A(k,ω)A({\bf k},\omega) and self-energies Σ(k,ω)\Sigma({\bf k},\omega) are calculated within the tJt-J model using the finite-temperature Lanczos method for small systems. A remarkable asymmetry between the electron and hole part is found. The hole (photoemission) spectra are overdamped, with ImΣω{\rm Im} \Sigma \propto \omega in a wide energy range, consistent with the marginal Fermi liquid scenario, and in good agreement with experiments on cuprates. In contrast, the quasiparticles in the electron part of the spectrum show weak damping.Comment: 4 pages, RevTeX, 4 Postscript figure

    Raman Response in Doped Antiferromagnets

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    The resonant part of the B1gB_{1g} electronic Raman scattering response is calculated within the tJt-J model on a planar lattice as a function of temperature and hole doping, using a finite-temperature diagonalization method for small systems. Results, directly applicable to experiments on cuprates, reveal on doping a very pronounced increase of the width of the two-magnon Raman peak, accompanied by a decrease of the total intensity. At the same time the peak position does not shift substantially in the underdoped regime.Comment: 11 pages revtex, 3 postscript figures. Minor corrections and changes from previous version, to be published in Phys. Rev.

    Control of the finite size corrections in exact diagonalization studies

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    We study the possibility of controlling the finite size corrections in exact diagonalization studies quantitatively. We consider the one- and two dimensional Hubbard model. We show that the finite-size corrections can be be reduced systematically by a grand-canonical integration over boundary conditions. We find, in general, an improvement of one order of magnitude with respect to studies with periodic boundary conditions only. We present results for ground-state properties of the 2D Hubbard model and an evaluation of the specific heat for the 1D and 2D Hubbard model.Comment: Phys. Rev. B (Brief Report), in pres

    Statics and dynamics of charge fluctuations in the t-J model

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    The equation for the charge vertex γ\gamma of the tJt-J model is derived and solved in leading order of an 1/N expansion, working directly in terms of Hubbard operators. Various quantities which depend crucially on γ\gamma are then calculated, such as the life time and the transport life time of electrons due to a charge coupling to other degrees of freedom and the charge-charge correlation function. Our results show that the static screening of charges and the dynamics of charge fluctuations depend only weakly on JJ and are mainly determined by the constraint of having no double occupancies of sites.Comment: 10 latex pages, 4 figures as post-script file

    Finite temperature properties of the triangular lattice t-J model, applications to Nax_xCoO2_2

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    We present a finite temperature (TT) study of the t-J model on the two-dimensional triangular lattice for the negative hopping tt, as relevant for the electron-doped Nax_xCoO2_2 (NCO). To understand several aspects of this system, we study the TT-dependent chemical potential, specific heat, magnetic susceptibility, and the dynamic Hall-coefficient across the entire doping range. We show systematically, how this simplest model for strongly correlated electrons describes a crossover as function of doping (xx) from a Pauli-like weakly spin-correlated metal close to the band-limit (density n=2n=2) to the Curie-Weiss metallic phase (1.5<n<1.751.5<n<1.75) with pronounced anti-ferromagnetic (AFM) correlations at low temperatures and Curie-Weiss type behavior in the high-temperature regime. Upon further reduction of the doping, a new energy scale, dominated by spin-interactions (JJ) emerges (apparent both in specific heat and susceptibility) and we identify an effective interaction Jeff(x)J_{eff}(x), valid across the entire doping range. This is distinct from Anderson's formula, as we choose here t<0t<0, hence the opposite sign of the usual Nagaoka-ferromagnetic situation. This expression includes the subtle effect of weak kinetic AFM - as encountered in the infinitely correlated situation (U=U=\infty). By explicit computation of the Kubo-formulae, we address the question of practical relevance of the high-frequency expression for the Hall coefficient RHR_H^*. We hope to clarify some open questions concerning the applicability of the t-J model to real experimental situations through this study

    Application of the finite-temperature Lanczos method for the evaluation of magnetocaloric properties of large magnetic molecules

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    We discuss the magnetocaloric properties of gadolinium containing magnetic molecules which potentially could be used for sub-Kelvin cooling. We show that a degeneracy of a singlet ground state could be advantageous in order to support adiabatic processes to low temperatures and simultaneously minimize disturbing dipolar interactions. Since the Hilbert spaces of such spin systems assume very large dimensions we evaluate the necessary thermodynamic observables by means of the Finite-Temperature Lanczos Method.Comment: 7 pages, 10 figures, invited for the special issue of EPJB on "New trends in magnetism and magnetic materials

    Pseudo-gap behavior in dynamical properties of high-Tc cuprates

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    Dynamical properties of 2D antiferromagnets with hole doping are investigated to see the effects of short range local magnetic order on the temperature dependence of the dynamical magnetic susceptibility. We show the pseudo-gap like behavior of the temperature dependence of the NMR relaxation rate. We also discuss implications of the results in relations to the observed spin gap like behavior of low-doped copper oxide high-TcT_c superconductors.Comment: 3 pages, Revtex, with 2 eps figures, to appear in J.Phys.Soc.Jpn. Vol.67 No.
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