139 research outputs found

    Nodal Landau Fermi-Liquid Quasiparticles in Overdoped La1.77_{1.77}Sr0.23_{0.23}CuO4_4

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    Nodal angle resolved photoemission spectra taken on overdoped La1.77_{1.77}Sr0.23_{0.23}CuO4_4 are presented and analyzed. It is proven that the low-energy excitations are true Landau Fermi-liquid quasiparticles. We show that momentum and energy distribution curves can be analyzed self-consistently without quantitative knowledge of the bare band dispersion. Finally, by imposing Kramers-Kronig consistency on the self-energy Σ\Sigma, insight into the quasiparticle residue is gained. We conclude by comparing our results to quasiparticle properties extracted from thermodynamic, magneto-resistance, and high-field quantum oscillation experiments on overdoped Tl2_2Ba2_2CuO6+δ_{6+\delta}.Comment: Accepted for publication in Phys. Rev.

    Temperature dependence of the resonance and low energy spin excitations in superconducting FeTe0.6_{0.6}Se0.4_{0.4}

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    We use inelastic neutron scattering to study the temperature dependence of the low-energy spin excitations in single crystals of superconducting FeTe0.6_{0.6}Se0.4_{0.4} (Tc=14T_c=14 K). In the low-temperature superconducting state, the imaginary part of the dynamic susceptibility at the electron and hole Fermi surfaces nesting wave vector Q=(0.5,0.5)Q=(0.5,0.5), χ(Q,ω)\chi^{\prime\prime}(Q,\omega), has a small spin gap, a two-dimensional neutron spin resonance above the spin gap, and increases linearly with increasing ω\hbar\omega for energies above the resonance. While the intensity of the resonance decreases like an order parameter with increasing temperature and disappears at temperature slightly above TcT_c, the energy of the mode is weakly temperature dependent and vanishes concurrently above TcT_c. This suggests that in spite of its similarities with the resonance in electron-doped superconducting BaFe2x_{2-x}(Co,Ni)x_xAs2_2, the mode in FeTe0.6_{0.6}Se0.4_{0.4} is not directly associated with the superconducting electronic gap.Comment: 7 pages, 6 figure

    Anisotropic Neutron Spin Resonance in Superconducting BaFe1.9_{1.9}Ni0.1_{0.1}As2_2

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    We use polarized inelastic neutron scattering to show that the neutron spin resonance below TcT_c in superconducting BaFe1.9_{1.9}Ni0.1_{0.1}As2_2 (Tc=20T_c=20 K) is purely magnetic in origin. Our analysis further reveals that the resonance peak near 7~meV only occurs for the planar response. This challenges the common perception that the spin resonance in the pnictides is an isotropic triplet excited state of the singlet Cooper pairs, as our results imply that only the S001=±1S_{001}=\pm1 components of the triplet are involved

    Spin fluctuations associated with the collapse of the pseudogap in a cuprate superconductor

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    Theories of the origin of superconductivity in cuprates are dependent on an understanding of their normal state which exhibits various competing orders. Transport and thermodynamic measurements on La2x_{2-x}Srx_xCuO4_4 show signatures of a quantum critical point, including a peak in the electronic specific heat CC versus doping p, near the doping p*, where the pseudogap collapses. The fundamental nature of the fluctuations associated with this peak is unclear. Here we use inelastic neutron scattering to show that close to TcT_c and near p*, there are low-energy collective spin excitations with characteristic energies \approx 5 meV. The correlation length of the spin fluctuations does not diverge in spite of the low energy scale and we conclude that the underlying quantum criticality is not due to antiferromagnetism but most likely to a collapse of the pseudogap. We show that the large specific heat near p* can be understood in terms of collective spin fluctuations. The spin fluctuations we measure exist across the superconducting phase diagram and may be related to the strange metal behaviour observed in overdoped cuprates

    Three-Dimensional Fermi Surface of Overdoped La-Based Cuprates

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    We present a soft x-ray angle-resolved photoemission spectroscopy study of the overdoped high-temperature superconductors La2x_{2-x}Srx_xCuO4_4 and La1.8x_{1.8-x}Eu0.2_{0.2}Srx_xCuO4_4. In-plane and out-of-plane components of the Fermi surface are mapped by varying the photoemission angle and the incident photon energy. No kzk_z dispersion is observed along the nodal direction, whereas a significant antinodal kzk_z dispersion is identified. Based on a tight-binding parametrization, we discuss the implications for the density of states near the van-Hove singularity. Our results suggest that the large electronic specific heat found in overdoped La2x_{2-x}Srx_xCuO4_4 can not be assigned to the van-Hove singularity alone. We therefore propose quantum criticality induced by a collapsing pseudogap phase as a plausible explanation for observed enhancement of electronic specific heat

    Spin density wave induced disordering of the vortex lattice in superconducting La2x_{2-x}Srx_xCuO4_4

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    We use small angle neutron scattering to study the superconducting vortex lattice in La2x_{2-x}Srx_xCuO4_4 as a function of doping and magnetic field. We show that near optimally doping the vortex lattice coordination and the superconducting coherence length ξ\xi are controlled by a van-Hove singularity crossing the Fermi level near the Brillouin zone boundary. The vortex lattice properties change dramatically as a spin-density-wave instability is approached upon underdoping. The Bragg glass paradigm provides a good description of this regime and suggests that SDW order acts as a novel source of disorder on the vortex lattice.Comment: Accepted in Phys. Rev.

    Field-Induced Magnetostructural Transitions in Antiferromagnetic Fe1+yTe1-xSx

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    The transport and structural properties of Fe1+yTe1-xSx (x=0, 0.05, and 0.10) crystals were studied in pulsed magnetic fields up to 65 T. The application of high magnetic fields results in positive magnetoresistance effect with prominent hystereses in the antiferromagnetic state. Polarizing microscope images obtained at high magnetic fields showed simultaneous occurrence of structural transitions. These results indicate that magnetoelastic coupling is the origin of the bicollinear magnetic order in iron chalcogenides.Comment: 5 pages, 5 figures, accepted for publication in Journal of the Physical Society of Japa

    Electronic and Magnetic Structures of Chain Structured Iron Selenide Compounds

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    Electronic and magnetic structures of iron selenide compounds Ce2O2FeSe2 (2212\ast) and BaFe2Se3(123\ast) are studied by the first-principles calculations. We find that while all these compounds are composed of one-dimensional (1D) Fe chain (or ladder) structures, their electronic structures are not close to be quasi-1D. The magnetic exchange couplings between two nearest-neighbor (NN) chains in 2212\ast and between two NN two-leg-ladders in 123\ast are both antiferromagnetic (AFM), which is consistent with the presence of significant third NN AFM coupling, a common feature shared in other iron-chalcogenides, FeTe (11\ast) and KyFe2-xSe2 (122\ast). In magnetic ground states, each Fe chain of 2212\ast is ferromagnetic and each two-leg ladder of 123\ast form a block-AFM structure. We suggest that all magnetic structures in iron-selenide compounds can be unified into an extended J1-J2-J3 model. Spin-wave excitations of the model are calculated and can be tested by future experiments on these two systems.Comment: 6 pages, 6 figures, 2 table
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