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High magnetic-field scales and critical currents in SmFeAs(O, F) crystals

Authors :
Philip J. W. Moll
Roman Puzniak
J. Karpinski
Nikolai D. Zhigadlo
Krzysztof Rogacki
Bertram Batlogg
Fedor Balakirev
Source :
Nature Materials. 9:628-633
Publication Year :
2010
Publisher :
Springer Science and Business Media LLC, 2010.

Abstract

Superconducting technology provides most sensitive field detectors, promising implementations of qubits and high field magnets for medical imaging and for most powerful particle accelerators. Thus, with the discovery of new superconducting materials, such as the iron pnictides, exploring their potential for applications is one of the foremost tasks. Even if the critical temperature Tc is high, intrinsic electronic properties might render applications rather difficult, particularly if extreme electronic anisotropy prevents effective pinning of vortices and thus severely limits the critical current density, a problem well known for cuprates. While many questions concerning microscopic electronic properties of the iron pnictides have been successfully addressed and estimates point to a very high upper critical field, their application potential is less clarified. Thus we focus here on the critical currents, their anisotropy and the onset of electrical dissipation in high magnetic fields up to 65 T. Our detailed study of the transport properties of optimally doped SmFeAs(O,F) single crystals reveals a promising combination of high (>2 x 10^6 A/cm^2) and nearly isotropic critical current densities along all crystal directions. This favorable intragrain current transport in SmFeAs(O,F), which shows the highest Tc of 54 K at ambient pressure, is a crucial requirement for possible applications. Essential in these experiments are 4-probe measurements on Focused Ion Beam (FIB) cut single crystals with sub-\mu\m^2 cross-section, with current along and perpendicular to the crystallographic c-axis and very good signal-to-noise ratio (SNR) in pulsed magnetic fields. The pinning forces have been characterized by scaling the magnetically measured "peak effect".

Details

ISSN :
14764660 and 14761122
Volume :
9
Database :
OpenAIRE
Journal :
Nature Materials
Accession number :
edsair.doi.dedup.....8520d0e9c8a54077d1ca74ac650b44fd
Full Text :
https://doi.org/10.1038/nmat2795