309 research outputs found

    Enhanced Local Moment Formation in a Chiral Luttinger Liquid

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    We derive here a stability condition for a local moment in the presence of an interacting sea of conduction electrons. The conduction electrons are modeled as a Luttinger liquid in which chirality and spin are coupled. We show that an Anderson-U defect in such an interacting system can be transformed onto a nearly-Fermi liquid problem. We find that correlations among the conduction electrons stabilize the local moment phase. A Schrieffer-Wolff transformation is then performed which results in an anisotropic exchange interaction indicative of the Kondo effect in a Luttinger liquid. The ground-state properties of this model are then equivalent to those of the Kondo model in a Luttinger liquid.Comment: 11 pages, no figure

    Interacting Electrons on a Square Fermi Surface

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    Electronic states near a square Fermi surface are mapped onto quantum chains. Using boson-fermion duality on the chains, the bosonic part of the interaction is isolated and diagonalized. These interactions destroy Fermi liquid behavior. Non-boson interactions are also generated by this mapping, and give rise to a new perturbation theory about the boson problem. A case with strong repulsions between parallel faces is studied and solved. There is spin-charge separation and the square Fermi surface remains square under doping. At half-filling, there is a charge gap and insulating behavior together with gapless spin excitations. This mapping appears to be a general tool for understanding the properties of interacting electrons on a square Fermi surface.Comment: 25 pages, Nordita preprint 94/22

    Bosonization on the lattice: the emergence of the higher harmonics

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    A general and transparent procedure to bosonize fermions placed on a lattice is presented. Harmonics higher than kFk_F are shown to appear in the one-paticle Green function, due to the compact character of real electron bands. Quantitative estimations of the role of these higher harmonics are made possible by the bosonization technique presented here.Comment: Pages: 15 (REVTEX 3.0) plus 4 postscript figures appended at the end of the tex

    Solitonic excitations in the Haldane phase of a S=1 chain

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    We study low-lying excitations in the 1D S=1S=1 antiferromagnetic valence-bond-solid (VBS) model. In a numerical calculation on finite systems the lowest excitations are found to form a discrete triplet branch, separated from the higher-lying continuum. The dispersion of these triplet excitations can be satisfactorily reproduced by assuming approximate wave functions. These wave functions are shown to correspond to moving hidden domain walls, i.e. to one-soliton excitations.Comment: RevTex 3.0, 24 pages, 2 figures on request by fax or mai

    Spin Gap and Superconductivity in Weakly Coupled Ladders: Interladder One-particle vs. Two-particle Crossover

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    Effects of the interladder one-particle hopping, tt_{\perp}, on the low-energy asymptotics of a weakly coupled Hubbard ladder system have been studied, based on the perturbative renormalization-group approach. We found that for finite intraladder Hubbard repulsion, UU, there exists a crossover value of the interladder one-particle hopping, tct_{\perp c}. For 0<t<tc0<t_{\perp}<t_{\perp c}, the spin gap metal (SGM) phase of the isolated ladder transits at a finite transition temperature, TcT_{c}, to the d-wave superconducting (SCd) phase via a two-particle crossover. In the temperature region, T<TcT<T_{c}, interladder coherent Josephson tunneling of the Cooper pairs occurs, while the interladder coherent one-particle process is strongly suppressed. For tc<tt_{\perp c}<t_{\perp}, around a crossover temperature, TcrossT_{cross}, the system crosses over to the two-dimensional (2D) phase via a one-particle crossover. In the temperature region, T<TcrossT<T_{cross}, the interladdercoherent band motion occurs.Comment: 4 pages, 5 eps figures, uses jpsj.st

    Coulomb Gaps in One-Dimensional Spin-Polarized Electron Systems

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    We investigate the density of states (DOS) near the Fermi energy of one-dimensional spin-polarized electron systems in the quantum regime where the localization length is comparable to or larger than the inter-particle distance. The Wigner lattice gap of such a system, in the presence of weak disorder, can occur precisely at the Fermi energy, coinciding with the Coulomb gap in position. The interplay between the two is investigated by treating the long-range Coulomb interaction and the random disorder potential in a self-consistent Hartree-Fock approximation. The DOS near the Fermi energy is found to be well described by a power law whose exponent decreases with increasing disorder strength.Comment: 4 pages, revtex, 4 figures, to be published in Phys. Rev. B as a Rapid Communicatio

    Low Energy Properties of the (n,n) Carbon Nanotubes

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    According to band theory, an ideal undoped (n,n) carbon nanotube is metallic. We show that the electron-electron interaction causes it to become Mott insulating with a spin gap. More interestingly, upon doping it develops superconducting fluctuations.Comment: 5pages, 2eps figures, one reference added, final version, accepted to PR

    Effect of conduction electron interactions on Anderson impurities

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    The effect of conduction electron interactions for an Anderson impurity is investigated in one dimension using a scaling approach. The flow diagrams are obtained by solving the renormalization group equations numerically. It is found that the Anderson impurity case is different from its counterpart -- the Kondo impurity case even in the local moment region. The Kondo temperature for an Anderson impurity shows nonmonotonous behavior, increasing for weak interactions but decreasing for strong interactions. The implication of the study to other related impurity models is also discussed.Comment: 10 pages, revtex, 4 figures (the postscript file is included), to appear in Phys. Rev. B (Rapid Commun.

    Coulomb drag between one-dimensional conductors

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    We have analyzed Coulomb drag between currents of interacting electrons in two parallel one-dimensional conductors of finite length LL attached to external reservoirs. For strong coupling, the relative fluctuations of electron density in the conductors acquire energy gap MM. At energies larger than Γ=const×vexp(LM/v)/L+Γ+\Gamma = const \times v_- \exp (-LM/v_-)/L + \Gamma_{+}, where Γ+\Gamma_{+} is the impurity scattering rate, and for L>v/ML>v_-/M, where vv_- is the fluctuation velocity, the gap leads to an ``ideal'' drag with almost equal currents in the conductors. At low energies the drag is suppressed by coherent instanton tunneling, and the zero-temperature transconductance vanishes, indicating the Fermi liquid behavior.Comment: 5 twocolumn pages in RevTex, added 1 eps-Figure and calculation of trans-resistanc

    Nonequilibrium Electron Distribution in Presence of Kondo Impurities

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    We study the energy relaxation of quasiparticles in voltage biased mesoscopic wires in presence of magnetic impurities. The renormalization of the exchange interaction of Kondo impurities coupled to conduction electrons is extended to the case of a nonequilibrium electron distribution, which is determined self-consistently from a Boltzmann equation with a collision term due to Kondo impurity mediated electron-electron scattering. The approach leads to predictions in quantitative agreement with recent experiments by Pothier et al. [Phys. Rev. Lett. 79, 3490 (1997)].Comment: 4 pages, 3 figure
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