Abstract

The iron-based superconductor Ba$_{1-x}$K$_x$Fe$_\text{2}$As$_\text{2}$ is emerging as a key material for high magnetic field applications owing to the recent developments in superconducting wires and bulk permanent magnets. Epitaxial thin films play important roles in investigating and artificially tuning physical properties; nevertheless, the synthesis of Ba$_{1-x}$K$_x$Fe$_2$As$_2$ epitaxial thin films remained challenging because of the high volatility of K. Herein, we report the successful growth of epitaxial Ba$_{1-x}$K$_x$Fe$_\text{2}$As$_\text{2}$ thin films by molecular-beam epitaxy with employing a combination of fluoride substrates (CaF$_\text{2}$, SrF$_\text{2}$, and BaF$_\text{2}$) and a low growth temperature (350$-$420$^\circ$C). Our epitaxial thin film grown on CaF$_\text{2}$ showed sharp superconducting transition at an onset critical temperature of 36 K, slightly lower than bulk crystals by ~2 K due presumably to the strain effect arising from the lattice and thermal expansion mismatch. Critical current density ($J$$_\text{c}$) determined by the magnetization hysteresis loop is as high as 2.2 MA/cm$^\text{2}$ at 4 K under self-field. In-field $J$$_\text{c}$ characteristics of the film are superior to the bulk crystals. The realization of epitaxial thin films opens opportunities for tuning superconducting properties by epitaxial strain and revealing intrinsic grain boundary transport of Ba$_{1-x}$K$_x$Fe$_\text{2}$As$_\text{2}$.

Highlights

  • Iron-based superconductors (IBSCs) have been regarded as new candidate materials for superconducting applications [1]

  • Our epitaxial thin film grown on CaF2 showed sharp superconducting transition at an onset critical temperature of 36 K, slightly lower than bulk crystals by ∼2 K due presumably to the strain effect arising from the lattice and thermal expansion mismatch

  • Similar results were obtained in the films grown on SrF2 and BaF2, suggesting that the use of fluoride substrates is critical for obtaining singlecrystalline Ba1−xKxFe2As2 films

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Summary

INTRODUCTION

Iron-based superconductors (IBSCs) have been regarded as new candidate materials for superconducting applications [1]. Powder-in-tube processed K-doped Ae-122 wires and tapes [20,21], and K-doped Ba-122 bulk magnets [22] have been fabricated as proof-of-principle studies for high-field applications, the information on the Jc transparency across the grain boundary for K-doped Ae-122 is not clear yet This is a sharp contrast to other IBSCs, where high-quality films have been grown on a variety of singleand bicrystalline, and technical substrates and, fundamental and application-related research has been developed [23,24,25]. We employ the combination of a low-temperature growth, up to 420 °C, and fluoride substrates that yield truly epitaxial films of Ba1−xKxFe2As2 with a high superconducting transition (Tcon ∼ 36 K), a sharp transition width of 1.5 K, and a high self-field Jc of 2.2 MA/cm at 4 K

EXPERIMENT
Crystal structure
Superconducting properties
CONCLUSION
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