AI Article Synopsis

  • Fe-based superconductors, especially the 1111 compounds like NdFeAs(O F), exhibit high superconducting critical temperatures and their properties are influenced by their crystal structure and chemical makeup.
  • A 22 nm thin film of NdFeAs(O F) was analyzed, revealing nanoscale defects that can enhance superconductivity by serving as pinning centers, and showing a high critical temperature of 44.7 K.
  • The study found that the film's electrical properties are affected by intrinsic pinning and structural variations, achieving notable current densities and demonstrating how microstructure tuning can optimize superconductivity in these materials.

Article Abstract

Fe-based superconductors present a large variety of compounds whose physical properties strongly depend on the crystal structure and chemical composition. Among them, the so-called 1111 compounds show the highest critical temperature in the bulk form. Here we demonstrate the realization of excellent superconducting properties in NdFeAs(O F ). We systematically investigated the correlation between the microstructure at the nanoscale and superconductivity in an epitaxial 22 nm NdFeAs(O F ) thin film on a MgO single crystalline substrate ( = 44.7 K). Atomic resolution analysis of the microstructure by transmission electron microscopy and atom probe tomography identified several defects and other inhomogeneities at the nanoscale that can act as extrinsic pinning centers. X-Ray diffraction and transmission electron microscopy displayed a broad variation of the -axis lattice parameter either due to a partially strained layer at the interface to the substrate, high local strain at dislocation arrays, mosaicity, or due to composition variation within the film. The electrical transport properties are substantially affected by intrinsic pinning and a matching field corresponding to the film thickness and associated with the Bean-Livingston surface barrier of the surfaces. The thin film showed a self-field critical current density (4.2 K) of ∼7.6 MA cm and a record pinning force density of ≈ 1 TN m near 35 T for ‖ at 4.2 K. These investigations highlight the role of the microstructure in fine-tuning and possibly functionalizing the superconductivity of Fe-based superconductors.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9417295PMC
http://dx.doi.org/10.1039/c9na00147fDOI Listing

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