4,678 research outputs found

    Phase diagram of Kondo-Heisenberg model on honeycomb lattice with geometrical frustration

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    We calculated the phase diagram of the Kondo-Heisenberg model on two-dimensional honeycomb lattice with both nearest-neighbor and next-nearest-neighbor antiferromagnetic spin exchanges, to investigate the interplay between RKKY and Kondo interactions at presence of magnetic frustration. Within a mean-field decoupling technology in slave-fermion representation, we derived the zero-temperature phase diagram as a function of Kondo coupling JkJ_k and frustration strength QQ. The geometrical frustration can destroy the magnetic order, driving the original antiferromagnetic (AF) phase to non-magnetic valence bond state (VBS). In addition, we found two distinct VBS. As JkJ_k is increased, a phase transition from AF to Kondo paramagnetic (KP) phase occurs, without the intermediate phase coexisting AF order with Kondo screening found in square lattice systems. In the KP phase, the enhancement of frustration weakens the Kondo screening effect, resulting in a phase transition from KP to VBS. We also found a process to recover the AF order from VBS by increasing JkJ_k in a wide range of frustration strength. Our work may provide deeper understanding for the phase transitions in heavy-fermion materials, particularly for those exhibiting triangular frustration

    Reexploration of interacting holographic dark energy model: Cases of interaction term excluding the Hubble parameter

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    In this paper, we make a deep analysis for the five typical interacting holographic dark energy models with the interaction terms Q=3βH0ρdeQ=3\beta H_{0}\rho_{\rm{de}}, Q=3βH0ρcQ=3\beta H_{0}\rho_{\rm{c}}, Q=3βH0(ρde+ρc)Q=3\beta H_{0}(\rho_{\rm{de}}+\rho_{\rm c}), Q=3βH0ρdeρcQ=3\beta H_{0}\sqrt{\rho_{\rm{de}}\rho_{\rm c}}, and Q=3βH0ρdeρcρde+ρcQ=3\beta H_{0}\frac{\rho_{\rm{de}}\rho_{c}}{\rho_{\rm{de}}+\rho_{\rm c}}, respectively. We obtain observational constraints on these models by using the type Ia supernova data (the Joint Light-curve Analysis sample), the cosmic microwave background data (Planck 2015 distance priors), the baryon acoustic oscillations data, and the direct measurement of the Hubble constant. We find that the values of χmin2\chi_{\rm min}^2 for all the five models are almost equal (around~699), indicating that the current observational data equally favor these IHDE models. In addition, a comparison with the cases of interaction term involving the Hubble parameter HH is also made.Comment: 14 pages, 6 figures. arXiv admin note: text overlap with arXiv:1710.0306

    New feature of low pTp_{T} charm quark hadronization in pppp collisions at s=7\sqrt{s}=7 TeV

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    Treating the light-flavor constituent quarks and antiquarks that can well describe the data of light-flavor hadrons in pppp collisions at s=7\sqrt{s}=7 TeV as the underlying source of chromatically neutralizing the charm quarks of low transverse momenta (pTp_{T}), we show that the experimental data of pTp_{T} spectra of single-charm hadrons D0,+D^{0,+}, D+D^{*+} Ds+D_{s}^{+}, Λc+\Lambda_{c}^{+} and Ξc0\Xi_{c}^{0} at mid-rapidity in the low pTp_{T} range (2pT72\lesssim p_{T}\lesssim7 GeV/cc) in pppp collisions at s=7\sqrt{s}=7 TeV can be well understood by the equal-velocity combination of perturbatively-created charm quarks and those light-flavor constituent quarks and antiquarks. This suggests a possible new scenario of low pTp_{T} charm quark hadronization, in contrast to the traditional fragmentation mechanism, in pppp collisions at LHC energies. This is also another support for the exhibition of the effective constituent quark degrees of freedom for the small parton system created in pppp collisions at LHC energies.Comment: 7 pages, 5 figure

    The edge engineering of topological Bi(111) bilayer

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    A topological insulator is a novel quantum state, characterized by symmetry-protected non-trivial edge/surface states. Our first-principle simulations show the significant effects of the chemical decoration on edge states of topological Bi(111) bilayer nanoribbon, which remove the trivial edge state and recover the Dirac linear dispersion of topological edge state. By comparing the edge states with and without chemical decoration, the Bi(111) bilayer nanoribbon offers a simple system for assessing conductance fluctuation of edge states. The chemical decoration can also modify the penetration depth and the spin texture of edge states. A low-energy effective model is proposed to explain the distinctive spin texture of Bi(111) bilayer nanoribbon, which breaks the spin-momentum orthogonality along the armchair edge.Comment: 5 pages, 5 figure
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