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High-field phase-diagram of Fe arsenide superconductors
Authors:Y.J. Jo  J. Jaroszynski  A. Yamamoto  A. Gurevich  S.C. Riggs  G.S. Boebinger  D. Larbalestier  H.H. Wen  N.D. Zhigadlo  S. Katrych  Z. Bukowski  J. Karpinski  R.H. Liu  H. Chen  X.H. Chen  L. Balicas
Affiliation:1. National High Magnetic Field Laboratory, Florida State University, Tallahassee-FL 32310, USA;2. Institute of Physics, Chinese Academy of Sciences, Beijing 100190, PR China;3. Laboratory for Solid State Physics, ETH Zürich, CH-8093 Zürich, Switzerland;4. Hefei National Laboratory for Physical Science a Microscale and Department of Physics, University of Science and Technology of China, Hefei, Anhui 230026, PR China
Abstract:Here, we report an overview of the phase-diagram of single-layered and double-layered Fe arsenide superconductors at high magnetic fields. Our systematic magneto-transport measurements of polycrystalline SmFeAsO1-xFx at different doping levels confirm the upward curvature of the upper critical magnetic field Hc2(T) as a function of temperature T defining the phase boundary between the superconducting and metallic states for crystallites with the ab planes oriented nearly perpendicular to the magnetic field. We further show from measurements on single-crystals that this feature, which was interpreted in terms of the existence of two superconducting gaps, is ubiquitous among both series of single- and double-layered compounds. In all compounds explored by us the zero temperature upper critical field Hc2(0), estimated either through the Ginzburg–Landau or the Werthamer–Helfand–Hohenberg single gap theories, strongly surpasses the weak-coupling Pauli paramagnetic limiting field. This clearly indicates the strong-coupling nature of the superconducting state and the importance of magnetic correlations for these materials. Our measurements indicate that the superconducting anisotropy, as estimated through the ratio of the effective masses γ =  (mc/mab)1/2 for carriers moving along the c-axis and the ab-planes, respectively, is relatively modest as compared to the high-Tc cuprates, but it is temperature, field and even doping dependent. Finally, our preliminary estimations of the irreversibility field Hm(T), separating the vortex-solid from the vortex-liquid phase in the single-layered compounds, indicates that it is well described by the melting of a vortex lattice in a moderately anisotropic uniaxial superconductor.
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