6533b829fe1ef96bd128ae3b

RESEARCH PRODUCT

Field dependence of the vortex core size probed by scanning tunneling microscopy

Samuel Mañas-valeroMarta GalbiatiEugenio CoronadoEdwin HerreraVladimir G. KoganHermann SuderowA. FenteIsabel Guillamón

subject

SuperconductivityPhysicsLength scaleCondensed matter physicsScatteringFísica02 engineering and technology021001 nanoscience & nanotechnology01 natural sciences7. Clean energyVortexlaw.inventionlawCondensed Matter::SuperconductivityLattice (order)0103 physical sciencesDensity of statesScanning tunneling microscopeScanning tunneling microscopySuperconductivitat010306 general physics0210 nano-technologyAnisotropyVortex core size

description

We study the spatial distribution of the density of states (DOS) at zero bias N(r) in the mixed state of single and multigap superconductors. We provide an analytic expression for N(r) based on deGennes' relationship between DOS and the order parameter that reproduces well scanning tunneling microscopy (STM) data in several superconducting materials. In the single gap superconductor β-Bi2Pd, we find that N(r) is governed by a length scale ξH=φ0/2πH, which decreases in rising fields. The vortex core size C, defined via the slope of the order parameter at the vortex center, C (dΔ/dr|r→0)-1, differs from ξH by a material dependent numerical factor. The new data on the tunneling conductance and vortex lattice of the 2H-NbSe1.8S0.2 show the in-plane isotropic vortices, suggesting that substitutional scattering removes the in-plane anisotropy found in the two-gap superconductor 2H-NbSe2. We fit the tunneling conductance of 2H-NbSe1.8S0.2 to a two gap model and calculate the vortex core size C for each band. We find that C is field independent and has the same value for both bands. We also analyze the two-band superconductor 2H-NbS2 and find the same result. We conclude that, independently of the magnetic field induced variation of the order parameter values in both bands, the spatial variation of the order parameter close to the vortex core is the same for all bands

https://doi.org/10.1103/physrevb.94.014517