Abstract
Strong pinning depends on the pinning force strength and number density of effective defects. Using the hydrostatic pressure method, we demonstrate here that hydrostatic pressure of 1.2 GPa can significantly enhance flux pinning or the critical current density (Jc) of optimally doped Ba0.6K0.4Fe2As2 crystals by a factor of up to 5 in both low and high fields, which is generally rare with other Jc enhancement techniques. At 4.1 K, high pressure can significantly enhance Jc from 5 × 105 A/cm2 to nearly 106 A/cm2 at 2 T, and from 2 × 105 A/cm2 to nearly 5.5 × 105 A/cm2 at 12 T. Our systematic analysis of the flux pinning mechanism indicates that both the pinning centre number density and the pinning force are greatly increased by the pressure and enhance the pinning. This study also shows that superconducting performance in terms of flux pinning or Jc for optimally doped superconducting materials can be further improved by using pressure.
Highlights
Strong pinning depends on the pinning force strength and number density of effective defects
Our previous results show that Jc is enhanced significantly under hydrostatic pressure in high fields in comparison to low fields, along with enhancement of the closely related Tc by more than 5 K in Sr4V2O6Fe2As2 polycrystalline bulks and NaFe0.97Co0.03As single crystals[12,13]
The primary motivation for the present work is to use optimally doped single crystal samples to elucidate the contributions of flux pinning to Jc enhancement in Fe-based superconductors
Summary
Strong pinning depends on the pinning force strength and number density of effective defects. Proton irradiation can only enhance flux pinning in high fields by inducing point defects in K:Ba122 1.
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