956 research outputs found

    Crystalline electric field effects in the electrical resistivity of PrOs4_4Sb12_{12}

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    The temperature TT and magnetic field HH dependencies of the electrical resistivity ρ\rho of the recently discovered heavy fermion superconductor \PrOsSb{} have features that are associated with the splitting of the Pr3+^{3+} Hund's rule multiplet by the crystalline electric field (CEF). These features are apparently due to magnetic exchange and aspherical Coulomb scattering from the thermally populated CEF-split Pr3+^{3+} energy levels. The ρ(T)\rho(T) data in zero magnetic field can be described well by calculations based on CEF theory for various ratios of magnetic exchange and aspherical Coulomb scattering, and yield CEF parameters that are qualitatively consistent with those previously derived from magnetic susceptibility, specific heat, and inelastic neutron scattering measurements. Calculated ρ(H)\rho(H) isotherms for a Γ3\Gamma_{3} ground state qualitatively account for the `dome-shaped' feature in the measured ρ(H)\rho(H) isotherms.Comment: 8 pages, 2 figures, submitted to Journal of Physics: Condensed Matte

    Evolution of crystalline electric field effects, superconductivity, and heavy fermion behavior in the specific heat of Pr(Os1x_{1-x}Rux_x)4_4Sb12_{12}

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    Specific heat C(T)C(T) measurements were made on single crystals of the superconducting filled skutterudite series Pr(Os1x_{1-x}Rux_x)4_4Sb12_{12} down to 0.6 K. Crystalline electric field fits in the normal state produced parameters which were in agreement with previous measurements. Bulk superconductivity was observed for all values of the Ru concentration xx with transition temperatures consistent with previous experiments, confirming a minimum in TcT_{c} at x=0.6x=0.6. The C(T)C(T) data below TcT_{c} appear to be more consistent with power law behavior for x=0x=0 (PrOs4_4Sb12_{12}), and with exponential behavior for 0.05x0.20.05 \leq x \leq 0.2. An enhanced electronic specific heat coefficient γ\gamma was observed for x0.4x \leq 0.4, further supporting x0.6x \simeq 0.6 as a critical concentration where the physical properties abruptly change. Significant enhancement of ΔC/Tc\Delta C/T_{c} above the weak coupling value was only observed for x=0x=0 and x=0.05x=0.05.Comment: 16 pages, 5 figures, submitted to Physical Review B. v2: text added and figures modifie

    Superconductivity, magnetic order, and quadrupolar order in the filled skutterudite system Pr1x_{1-x}Ndx_{x}Os4_4Sb12_{12}

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    Superconductivity, magnetic order, and quadrupolar order have been investigated in the filled skutterudite system Pr1x_{1-x}Ndx_{x}Os4_4Sb12_{12} as a function of composition xx in magnetic fields up to 9 tesla and at temperatures between 50 mK and 10 K. Electrical resistivity measurements indicate that the high field ordered phase (HFOP), which has been identified with antiferroquadruoplar order, persists to xx \sim 0.5. The superconducting critical temperature TcT_c of PrOs4_4Sb12_{12} is depressed linearly with Nd concentration to xx \sim 0.55, whereas the Curie temperature TFMT_{FM} of NdOs4_4Sb12_{12} is depressed linearly with Pr composition to (1x1-x) \sim 0.45. In the superconducting region, the upper critical field Hc2(x,0)H_{c2}(x,0) is depressed quadratically with xx in the range 0 << xx \lesssim 0.3, exhibits a kink at xx \approx 0.3, and then decreases linearly with xx in the range 0.3 \lesssim xx \lesssim 0.6. The behavior of Hc2(x,0)H_{c2}(x,0) appears to be due to pair breaking caused by the applied magnetic field and the exhange field associated with the polarization of the Nd magnetic moments, in the superconducting state. From magnetic susceptibility measurements, the correlations between the Nd moments in the superconducting state appear to change from ferromagnetic in the range 0.3 \lesssim xx \lesssim 0.6 to antiferromagnetic in the range 0 << xx \lesssim 0.3. Specific heat measurements on a sample with xx == 0.45 indicate that magnetic order occurs in the superconducting state, as is also inferred from the depression of Hc2(x,0)H_{c2}(x,0) with xx.Comment: 7 pages, 7 figures, currently submitted to Phys. Rev.

    Non-Fermi liquid behavior in a fluctuating valence system, the filled skutterudite compound CeRu_{4}As_{12}

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    Electrical resistivity ρ\rho, specific heat C, and magnetic susceptibility χ\chi measurements made on the filled skutterudite CeRu_4As_{12} reveal non-Fermi liquid (NFL) T - dependences at low T, i.e., ρ\rho(T) \sim T^{1.4} and weak power law or logarithmic divergences in C(T)/T and χ\chi(T). Measurements also show that the T - dependence of the thermoelectric power S(T) deviates from that seen in other Ce systems. The NFL behavior appears to be associated with fluctuations of the Ce valence between 3^+ and 4^+ rather than a typical Kondo lattice scenario that would be appropriate for an integral Ce valence of 3^+.Comment: 18 pages, 5 figure

    Strong magnetic fluctuations in superconducting state of CeCoIn5_5

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    We show results on the vortex core dissipation through current-voltage measurements under applied pressure and magnetic field in the superconducting phase of CeCoIn5_5. We find that as soon as the system becomes superconducting, the vortex core resistivity increases sharply as the temperature and magnetic field decrease. The sharp increase in flux flow resistivity is due to quasiparticle scattering on critical antiferromagnetic fluctuations. The strength of magnetic fluctuations below the superconducting transition suggests that magnetism is complimentary to superconductivity and therefore must be considered in order to fully account for the low-temperature properties of CeCoIn5_5.Comment: 7 pages, 6 figure

    Symmetry properties of the nodal superconductor PrOs4Sb12

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    We present a theoretical study of the superconducting gap function in PrOs4Sb12 using a symmetry-based approach. A three-component order parameter in the triplet channel best describes superconductivity. The gap function is non-degenerate and the lower branch has four cusp nodes at unusual points of the Fermi surface, which lead to power law behaviours in the density of states, specific heat and nuclear spin relaxation rate.Comment: to appear in Phys. Rev. B 7
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