Vortex matter and strong pinning in underdoped PrFeAs(O,F) with atomic-sized defects
arXiv:2510.10264 · doi:10.1103/d4t9-gk9z
Abstract
We present a comprehensive investigation of the field-dependent critical current density and pinning force, combined with a detailed analysis of the nanostructural defect landscape in single crystal of underdoped PrFeAs(O,F) superconductor. Our study demonstrates that for both in-plane and out-of-plane magnetic field orientations critical current density exhibits a strong pinning regime in intermediate fields across the entire temperature range. The dominant contribution to pinning originates from oxygen-to-fluorine substitutional defects, oxygen vacancies, which all act as point defects via a quasiparticle mean free path fluctuation mechanism. Scanning transmission electron microscope studies did not reveal any volume or surface defect types within the lattice.
References in corpus (9)
- High magnetic field scales and critical currents in SmFeAs(O,F) crystals: promising for applications
- Flux pinning in (1111) iron-pnictide superconducting crystals
- High-pressure flux growth, structural, and superconducting properties of LnFeAsO (Ln = Pr, Nd, Sm) single crystals
- High-temperature superconductivity in hydrides
- Strong-pinning regimes by spherical inclusions in anisotropic type-II superconductors
- Nodal multigap superconductivity in the anisotropic iron-based compound RbCa2Fe4As4F2
- Superconductivity of underdoped PrFeAs(O,F) investigated via point-contact spectroscopy and nuclear magnetic resonance
- High upper critical field (120 T) with small anisotropy of highly hydrogen-substituted SmFeAsO epitaxial film
- Upper critical fields in high- superconductors