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Disorder, critical currents, and vortex pinning energies in isovalently substituted BaFe2(As1−xPx)2

Authors :
H. Pastoriza
S. Demirdis
Shigeru Kasahara
C. J. van der Beek
Marcin Konczykowski
Yuji Matsuda
Yanina Fasano
Takasada Shibauchi
Takahito Terashima
Source :
Physical Review B. 87
Publication Year :
2013
Publisher :
American Physical Society (APS), 2013.

Abstract

We present a comprehensive overview of vortex pinning in single crystals of the isovalently substituted iron-based superconductor BaFe${}_{2}$(As${}_{1\ensuremath{-}x}$P${}_{x}$)${}_{2}$, a material that qualifies as an archetypical clean superconductor, containing only sparse strong pointlike pins [in the sense of C. J. van der Beek et al., Phys. Rev. B 66, 024523 (2002)]. Widely varying critical current values for nominally similar compositions show that flux pinning is of extrinsic origin. Vortex configurations, imaged using the Bitter decoration method, show less density fluctuations than those previously observed in charge-doped Ba(Fe${}_{1\ensuremath{-}x}$Co${}_{x}$)${}_{2}$As${}_{2}$ single crystals. Analysis reveals that the pinning force and energy distributions depend on the P content $x$. However, they are always much narrower than in Ba(Fe${}_{1\ensuremath{-}x}$Co${}_{x}$)${}_{2}$As${}_{2}$, a result that is attributed to the weaker temperature dependence of the superfluid density on approaching ${T}_{c}$ in BaFe${}_{2}$(As${}_{1\ensuremath{-}x}$P${}_{x}$)${}_{2}$. Critical current density measurements and pinning force distributions independently yield a mean distance between effective pinning centers $\overline{\mathcal{L}}\ensuremath{\sim}90$ nm, increasing with increasing P content $x$. This evolution can be understood as being the consequence of the P dependence of the London penetration depth. Further salient features are a wide vortex free ``Meissner belt'', observed at the edge of overdoped crystals, and characteristic chainlike vortex arrangements, observed at all levels of P substitution.

Details

ISSN :
1550235X and 10980121
Volume :
87
Database :
OpenAIRE
Journal :
Physical Review B
Accession number :
edsair.doi...........72c48c5abbdf8f00c82b329413fa56e9
Full Text :
https://doi.org/10.1103/physrevb.87.094506