1,218 research outputs found

    Quantum Griffiths phase in CePd(1-x)Rh(x) with x ~ 0.8

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    The magnetic field dependence of the magnetisation (MM) and the temperature dependence of the ac susceptibility (χ=dM/dH\chi' = dM/dH) of CePd(1-x)Rh(x) single crystals with 0.80x0.860.80 \leq x \leq 0.86 are analysed within the frame of the quantum Griffiths phase scenario, which predicts MHλM \propto H^{\lambda} and χTλ1\chi' \propto T^{\lambda-1} with 0λ10 \leq \lambda \leq 1. All MM vs HH and χ\chi' vs TT data follow the predicted power-law behaviour. The parameter λ\lambda, extracted from χ(T)\chi'(T), is very sensitive to the Rh content xx and varies systematically with xx from -0.1 to 0.4. The value of λ\lambda, derived from M(H)M(H) measurements on a \cpr single crystal, seems to be rather constant, λ0.2\lambda \approx 0.2, in a broad range of temperatures between 0.05 and 2 K and fields up to about 10 T. All observed signatures and the λ\lambda values are thus compatible with the quantum Griffiths scenario.Comment: 4 pages, 3 figure

    Huge First-Order Metamagnetic Transition in the Paramagnetic Heavy-Fermion System CeTiGe

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    We report on the observation of large, step-like anomalies in the magnetization (ΔM=0.74\Delta M = 0.74\,μB\mu_{\rm B}/Ce), in the magnetostriction (Δl/l0=2.0103\Delta l/l_{0} = 2.0 \cdot 10^{-3}), and in the magnetoresistance in polycrystals of the paramagnetic heavy-fermion system CeTiGe at a critical magnetic field μ0Hc\mu_0 H_c \approx 12.5\,T at low temperatures. The size of these anomalies is much larger than those reported for the prototypical heavy-fermion metamagnet CeRu2_2Si2_2. Furthermore, hysteresis between increasing and decreasing field data indicate a real thermodynamic, first-order type of phase transition, in contrast to the crossover reported for CeRu2_2Si2_2. Analysis of the resistivity data shows a pronounced decrease of the electronic quasiparticle mass across HcH_c. These results establish CeTiGe as a new metamagnetic Kondo-lattice system, with an exceptionally large, metamagnetic transition of first-order type at a moderate field.Comment: 5 pages, 4 figure

    Non-Fermi liquid states in the pressurized CeCu2(Si1xGex)2CeCu_2(Si_{1-x}Ge_x)_2 system: two critical points

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    In the archetypal strongly correlated electron superconductor CeCu2_2Si2_2 and its Ge-substituted alloys CeCu2_2(Si1x_{1-x}Gex_{x})2_2 two quantum phase transitions -- one magnetic and one of so far unknown origin -- can be crossed as a function of pressure \cite{Yuan 2003a}. We examine the associated anomalous normal state by detailed measurements of the low temperature resistivity (ρ\rho) power law exponent α\alpha. At the lower critical point (at pc1p_{c1}, 1α1.51\leq\alpha\leq 1.5) α\alpha depends strongly on Ge concentration xx and thereby on disorder level, consistent with a Hlubina-Rice-Rosch scenario of critical scattering off antiferromagnetic fluctuations. By contrast, α\alpha is independent of xx at the upper quantum phase transition (at pc2p_{c2}, α1\alpha\simeq 1), suggesting critical scattering from local or Q=0 modes, in agreement with a density/valence fluctuation approach.Comment: 4 pages, including 4 figures. New results added. Significant changes on the text and Fig.

    Dual-path state reconstruction scheme for propagating quantum microwaves and detector noise tomography

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    Quantum state reconstruction involves measurement devices that are usually described by idealized models, but not known in full detail in experiments. For weak propagating microwaves, the detection process requires linear amplifiers which obscure the signal with random noise. Here, we introduce a theory which nevertheless allows one to use these devices for measuring all quadrature moments of propagating quantum microwaves based on cross-correlations from a dual-path amplification setup. Simultaneously, the detector noise properties are determined, allowing for tomography. We demonstrate the feasibility of our novel concept by proof-of-principle experiments with classical mixtures of weak coherent microwaves.Comment: 11 pages, 3 figure

    Tunable coupling engineering between superconducting resonators: from sidebands to effective gauge fields

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    In this work we show that a tunable coupling between microwave resonators can be engineered by means of simple Josephson junctions circuits, such as dc- and rf-SQUIDs. We show that by controlling the time dependence of the coupling it is possible to switch on and off and modulate the cross-talk, boost the interaction towards the ultrastrong regime, as well as to engineer red and blue sideband couplings, nonlinear photon hopping and classical gauge fields. We discuss how these dynamically tunable superconducting circuits enable key applications in the fields of all optical quantum computing, continuous variable quantum information and quantum simulation - all within the reach of state of the art in circuit-QED experiments.Comment: 11 pages, 4 figure

    OTIS: a radiation hard TDC for LHCb

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