16,020 research outputs found

    Weak coupling d-wave BCS superconductivity and unpaired electrons in overdoped La_{2-x}Sr_{x}CuO_{4} single crystals

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    The low-temperature specific heat (SH) of overdoped La_{2-x}Sr_{x}CuO_{4} single crystals (0.178=<x=<0.290) has been measured. For the superconducting samples (0.178=<x=<0.238), the derived gap values (without any adjusting parameters) approach closely onto the theoretical prediction \Delta_{0}=2.14k_{B}T_{c} for the weak-coupling d-wave BCS superconductivity. In addition, the residual term \gamma(0) of SH at H=0 increases with x dramatically when beyond x~0.22, and finally evolves into the value of a complete normal metallic state at higher doping levels, indicating growing amount of unpaired electrons. We argue that this large \gamma(0) cannot be simply attributed to the pair breaking induced by the impurity scattering, instead the phase separation is possible.Comment: 6 pages, 6 figures; Contents added; Accepted for publication in Phys. Rev.

    Competition between the BCS superconductivity and ferromagnetic spin fluctuations in MgCNi3_3

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    The low temperature specific heat of the superconductor MgCNi3_3 and a non-superconductor MgC0.85_{0.85}Ni3_3 is investigated in detail. An additional contribution is observed from the data of MgCNi3_3 but absent in MgC0.85_{0.85}Ni3_3, which is demonstrated to be insensitive to the applied magnetic field even up to 12 Tesla. A detailed discussion on its origin is then presented. By subtracting this additional contribution, the zero field specific heat of MgCNi3_3 can be well described by the BCS theory with the gap ratio (Δ/kBTc\Delta/k_BT_c) determined by the previous tunneling measurements. The conventional s-wave pairing state is further proved by the magnetic field dependence of the specific heat at low temperatures and the behavior of the upper critical field.Comment: To appear in Physical Review B, 6 pages, 7 figure

    Entanglement and quantum phase transition in alternating XY spin chain with next-nearest neighbour interactions

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    By using the method of density-matrix renormalization-group to solve the different spin-spin correlation functions, the nearest-neighbouring entanglement(NNE) and next-nearest-neighbouring entanglement(NNNE) of one-dimensional alternating Heisenberg XY spin chain is investigated in the presence of alternating nearest neighbour interactions of exchange couplings, external magnetic fields and next-nearest neighbouring interactions. For dimerized ferromagnetic spin chain, NNNE appears only above the critical dimerized interaction, meanwhile, the dimerized interaction effects quantum phase transition point and improves NNNE to a large value. We also study the effect of ferromagnetic or antiferromagnetic next-nearest neighboring (NNN) interactions on the dynamics of NNE and NNNE. The ferromagnetic NNN interaction increases and shrinks NNE below and above critical frustrated interaction respectively, while the antiferromagnetic NNN interaction always decreases NNE. The antiferromagnetic NNN interaction results to a larger value of NNNE in comparison to the case when the NNN interaction is ferromagnetic.Comment: 13 pages, 4 figures,. accepted by Chinese Physics B 2008 11 (in press

    Fabrication and superconductivity of NaxTaS2 crystals

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    In this paper we report the growth and superconductivity of NaxTaS2Na_xTaS_2 crystals. The structural data deduced from X-ray diffraction pattern shows that the sample has the same structure as 2HTaS22H-TaS_2. A series of crystals with different superconducting transition temperatures (TcT_c) ranging from 2.5 K to 4.4 K were obtained. It is found that the TcT_c rises with the increase of NaNa content determined by Energy-Dispersive x-ray microanalysis(EDX) of Scanning Electron Microscope (SEM) on these crystals. Compared with the resistivity curve of un-intercalated sample 2HTaS22H-TaS_2 (TcT_c = 0.8 K, TCDWT_{CDW} \approx 70 K), no signal of charge density wave (CDW) was observed in samples Na0.1TaS2Na_{0.1}TaS_2 and Na0.05TaS2Na_{0.05}TaS_2. However, in some samples with lower TcT_c, the CDW appears again at about 65 K. Comparison between the anisotropic resistivity indicates that the anisotropy becomes smaller in samples with more NaNa intercalation (albeit a weak semiconducting behavior along c-axis) and thus higher TcT_c. It is thus concluded that there is a competition between the superconductivity and the CDW. With the increase of sodium content, the rise of TcT_c in NaxTaS2Na_xTaS_2 is caused mainly by the suppression to the CDW in 2HTaS22H-TaS_2, and the conventional rigid band model for layered dichalcogenide may be inadequate to explain the changes induced by the slight intercalation of sodium in 2HTaS22H-TaS_2.Comment: 8 pages, 13 figures, To appear in Physical Review

    Diffusion in a multi-component Lattice Boltzmann Equation model

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    Diffusion phenomena in a multiple component lattice Boltzmann Equation (LBE) model are discussed in detail. The mass fluxes associated with different mechanical driving forces are obtained using a Chapman-Enskog analysis. This model is found to have correct diffusion behavior and the multiple diffusion coefficients are obtained analytically. The analytical results are further confirmed by numerical simulations in a few solvable limiting cases. The LBE model is established as a useful computational tool for the simulation of mass transfer in fluid systems with external forces.Comment: To appear in Aug 1 issue of PR

    Evidence for s-wave pairing from measurement on lower critical field in MgCNi3MgCNi_3

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    Magnetization measurements in the low field region have been carefully performed on a well-shaped cylindrical and an ellipsoidal sample of superconductor MgCNi3MgCNi_3. Data from both samples show almost the same results. The lower critical field Hc1H_{c1} and the London penetration depth λ\lambda are thus derived. It is found that the result of normalized superfluid density λ2(0)/λ2(T)\lambda^2(0)/\lambda^2(T) of MgCNi3MgCNi_3 can be well described by BCS prediction with the expectation for an isotropic s-wave superconductivity.Comment: To appear in Phys. Rev.
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