Tripling of the Superconducting Critical Current Density in BaFe(AsP) Retained After Pressure Release
arXiv:2601.01328 · doi:10.1088/1361-6668/ae702f
Abstract
Superconducting performance is tunable not only via chemical modification or defect engineering, but also through external parameters such as pressure, though this method remains less readily accessible. In this work, we study how compression influences vortex dynamics and critical currents in an iron-based superconductor. Specifically, we perform magnetization measurements using an off-the-shelf pressure cell to investigate the effects of hydrostatic pressures up to 1.08 GPa on the magnetic properties of BaFe(AsP) crystals across a range of temperatures and magnetic fields . Although these pressures minimally affect the superconducting critical temperature, they produce a clear increase in the critical current density , a pronounced reduction in the rate of thermally activated vortex motion , and can change the dominant vortex pinning mechanism. Furthermore, the effects of pressure are irreversible: after pressurization and subsequent release at room temperature, high-density microcracks are observed and the crystals retain their enhanced critical current densities. The second magnetization peak vanishes above 18 K after the pressure cycle, which we attribute to a transition from predominantly pinning to a mixed mechanism of and surface pinning. Lastly, a threefold increase in , a more than 40\% reduction in at 8~K and 0.5~T, and an expanded elastic-creep region were achieved after pressure cycles. These findings demonstrate the potential utility of pressure cycling for improving , which may offer a simpler alternative compared to approaches such as chemical doping or the introduction of artificial pinning centers.
References in corpus (17)
- Superconductivity at 27 K in tetragonal FeSe under high pressure
- Why Does Undoped FeSe Become A High Tc Superconductor Under Pressure?
- Small anisotropy, weak thermal fluctuations, and high field superconductivity in Co-doped iron pnictide Ba(Fe1-xCox)2As2
- Fishtail effect and the vortex phase diagram of single crystal Ba0.6K0.4Fe2As2
- Flux pinning in (1111) iron-pnictide superconducting crystals
- Chemical Pressure and Physical Pressure in BaFe_2(As_{1-x}P_{x})_2
- Pressure-induced high-temperature superconductivity retained at ambient
- Hydrostatic pressure: A very effective approach to significantly enhance critical current density in granular Sr4V2O6Fe2As2 superconductor
- Coincident structural and magnetic order in BaFe(As)P) revealed by high-resolution neutron diffraction
- Plastic pinning replaces collective pinning as the second magnetization peak disappears in the pnictide superconductor Ba-KFeAs
- SquidLab -- a user-friendly program for background subtraction and fitting of magnetization data
- Hydrostatic pressure induced transition from δTc to δl pinning mechanism in MgB2
- Anisotropic Superconducting Properties of Optimally Doped BaFe(AsP) under Pressure
- Strong pinning theory of thermal vortex creep in type II superconductors
- Study of the second magnetization peak and the pinning behaviour in Ba(FeCo)As$_2
- Interplay of electron-phonon coupling, pseudogap, and superconductivity in CsCaFeAsF studied using ultrafast optical spectroscopy
- Increase of critical current density in FeSe superconductor by strain effect