43,063 research outputs found

    Stray field and superconducting surface spin valve effect in La0.7_{0.7}Ca0.3_{0.3}MnO3_3/YBa2_2Cu3_3O7δ_{7-\delta} bilayers

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    Electronic transport and magnetization measurements were performed on La0.7_{0.7}Ca0.3_{0.3}MnO3_3/YBa2_2Cu3_3O7δ_{7-\delta} (LCMO/YBCO) bilayers below the superconducting transition temperature in order to study the interaction between magnetism and superconductivity. This study shows that a substantial number of weakly pinned vortices are induced in the YBCO layer by the large out-of-plane stray field in the domain walls. Their motion gives rise to large dissipation peaks at the coercive field. The angular dependent magnetoresistance (MR) data reveal the interaction between the stripe domain structure present in the LCMO layer and the vortices and anti-vortices induced in the YBCO layer by the out-of-plane stray field. In addition, this study shows that a superconducting surface spin valve effect is present in these bilayers as a result of the relative orientation between the magnetization at the LCMO/YBCO interface and the magnetization in the interior of the LCMO layer that can be tuned by the rotation of a small HH. This latter finding will facilitate the development of superconductive magnetoresistive memory devices. These low-magnetic field MR data, furthermore, suggest that triplet superconductivity is induced in the LCMO layer, which is consistent with recent reports of triplet superconductivity in LCMO/YBCO/LCMO trilayers and LCMO/YBCO bilayers.Comment: 14 pages, 3 figure

    Anomalous Paramagnetic Magnetization in Mixed State of CeCoIn5_5 single crystals

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    Magnetization and torque measurements were performed on CeCoIn5_5 single crystals to study the mixed-state thermodynamics. These measurements allow the determination of both paramagnetic and vortex responses in the mixed-state magnetization. The paramagnetic magnetization is suppressed in the mixed state with the spin susceptibility increasing with increasing magnetic field. The dependence of spin susceptibility on magnetic field is due to the fact that heavy electrons contribute both to superconductivity and paramagnetism and a large Zeeman effect exists in this system. No anomaly in the vortex response was found within the investigated temperature and field range

    Surface Impedance and Bulk Band Geometric Phases in One-Dimensional Systems

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    Surface impedance is an important concept in classical wave systems such as photonic crystals (PCs). For example, the condition of an interface state formation in the interfacial region of two different one-dimensional PCs is simply Z_SL +Z_SR=0, where Z_SL (Z_SR)is the surface impedance of the semi-infinite PC on the left- (right-) hand side of the interface. Here, we also show a rigorous relation between the surface impedance of a one-dimensional PC and its bulk properties through the geometrical (Zak) phases of the bulk bands, which can be used to determine the existence or non-existence of interface states at the interface of the two PCs in a particular band gap. Our results hold for any PCs with inversion symmetry, independent of the frequency of the gap and the symmetry point where the gap lies in the Brillouin Zone. Our results provide new insights on the relationship between surface scattering properties, the bulk band properties and the formation of interface states, which in turn can enable the design of systems with interface states in a rational manner

    Coexistence of Localized and Extended States in Disordered Systems

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    It is commonly believed that Anderson localized states and extended states do not coexist at the same energy. Here we propose a simple mechanism to achieve the coexistence of localized and extended states in a band in a class of disordered quasi-1D and quasi-2D systems. The systems are partially disordered in a way that a band of extended states always exists, not affected by the randomness, whereas the states in all other bands become localized. The extended states can overlap with the localized states both in energy and in space, achieving the aforementioned coexistence. We demonstrate such coexistence in disordered multi-chain and multi-layer systems.Comment: 5 pages, 3 figure

    Pairing Symmetry of CeCoIn5_5 Detected by In-plane Torque Measurements

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    In-plane torque measurements were performed on heavy fermion CeCoIn5_5 single crystals in the temperature TT range 1.8 K T10\leq T \leq 10 K and applied magnetic field HH up to 14 T. The normal-state torque is given by τnH4(1+T/TK)1sin4ϕ\tau_n \propto H^4(1+T/T_K)^{-1}\sin 4\phi. The reversible part of the mixed-state torque, obtained after subtracting the corresponding normal state torque, shows also a four-fold symmetry. In addition, sharp peaks are present in the irreversible torque at angles of π/\pi/4, 3π\pi/4, 5π\pi/4, 7π\pi/4, etc. Both the four-fold symmetry in the reversible torque and the sharp peaks in the irreversible torque of the mixed state imply dxyd_{xy} symmetry of the superconducting order parameter. The field and temperature dependences of the reversible mixed-state torque provide further evidence for dxyd_{xy} wave symmetry. The four-fold symmetry in the normal state has a different origin since it has different field and temperature dependences than the one in the mixed state. The possible reasons of the normal state four-fold symmetry are discussed

    Baryon states with open charm in the extended local hidden gauge approach

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    In this paper we examine the interaction of DND N and DND^* N states, together with their coupled channels, by using an extension of the local hidden gauge formalism from the light meson sector, which is based on heavy quark spin symmetry. The scheme is based on the use of the impulse approximation at the quark level, with the heavy quarks acting as spectators, which occurs for the dominant terms where there is the exchange of a light meson. The pion exchange and the Weinberg-Tomozawa interactions are generalized and with this dynamics we look for states generated from the interaction, with a unitary coupled channels approach that mixes the pseudoscalar-baryon and vector-baryon states. We find two states with nearly zero width which are associated to the Λc(2595)\Lambda_c(2595) and Λc(2625)\Lambda_c(2625). The lower state, with JP=1/2J^P = 1/2^-, couples to DND N and DND^* N, and the second one, with JP=3/2J^P = 3/2^-, to DND^* N. In addition to these two Λc\Lambda_c states, we find four more states with I=0I=0, one of them nearly degenerate in two states of J=1/2, 3/2J=1/2,\ 3/2. Furthermore we find three states in I=1I=1, two of them degenerate in J=1/2,3/2J=1/2, 3/2.Comment: v3: version to appear in Eur.Phys.J.

    Description of ρ(1700)\rho (1700) as a ρKKˉ\rho K \bar{K} system with the fixed center approximation

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    We study the ρKKˉ\rho K\bar{K} system with an aim to describe the ρ(1700)\rho (1700) resonance. The chiral unitary approach has achieved success in a description of systems of the light hadron sector. With this method, the KKˉK \bar{K} system in the isospin sector I=0I=0, is found to be a dominant component of the f0(980)f_0 (980) resonance. Therefore, by regarding the KKˉK\bar{K} system as a cluster, the f0(980)f_0 (980) resonance, we evaluate the ρKKˉ\rho K\bar{K} system applying the fixed center approximation to the Faddeev equations. We construct the ρK\rho K unitarized amplitude using the chiral unitary approach. As a result, we find a peak in the three-body amplitude around 1739 MeV and a width of about 227 MeV. The effect of the width of ρ\rho and f0(980)f_0 (980) is also discussed. We associate this peak to the ρ(1700)\rho (1700) which has a mass of 1720±201720 \pm 20 MeV and a width of 250±100250 \pm 100 MeV
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