94,603 research outputs found

    Type-I superconductivity in noncentrosymmetric superconductor AuBe

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    The noncentrosymmetric superconductor AuBe have been investigated using the magnetization, resistivity, specific heat, and muon-spin relaxation/rotation measurements. AuBe crystallizes in the cubic FeSi-type B20 structure with superconducting transition temperature observed at TcT_{c} = 3.2 ±\pm 0.1 K. The low-temperature specific heat data, CelC_{el}(T), indicate a weakly-coupled fully gapped BCS superconductivity with an isotropic energy gap 2Δ(0)/kBTc\Delta(0)/k_{B}T_{c} = 3.76, which is close to the BCS value of 3.52. Interestingly, type-I superconductivity is inferred from the μ\muSR measurements, which is in contrast with the earlier reports of type-II superconductivity in AuBe. The Ginzburg-Landau parameter is κGL\kappa_{GL} = 0.4 << 1/2\sqrt{2}. The transverse-field μ\muSR data transformed in the maximum entropy spectra depicting the internal magnetic field probability distribution, P(H), also confirms the absence of the mixed state in AuBe. The thermodynamic critical field, HcH_{c}, calculated to be around 259 Oe. The zero-field μ\muSR results indicate that time-reversal symmetry is preserved and supports a spin-singlet pairing in the superconducting ground state.Comment: 9 pages, 9 figure

    Optimizing the catching of atoms or molecules in two-dimensional traps

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    Single-photon cooling is a recently introduced method to cool atoms and molecules for which standard methods might not be applicable. We numerically examine this method in a two-dimensional wedge trap as well as in a two-dimensional harmonic trap. An element of the method is an optical dipole box trapping atoms irreversibly. We show that the cooling efficiency of the single-photon method can be improved by optimizing the trajectory of this optical dipole box.Comment: 8 pages, 11 figures, improved version with corrected typos et
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