Structures of vortex in Co-doped BaFe2As2 iron superconductors with different doping level by scanning Hall probe microscopy

Main Article Content

Hussein Ali Mohammed

Abstract

The 122 iron arsenide unconventional superconductors are part of a new class of iron-based superconductors. Co-doped BaFe2xCoxAs2 (Ba-122) iron superconductors sample have been examine by scanning Hall probe microscopy (SHPM) technique to find out the magnetic properties of Ba-122 . Has been completed the evolution of profiles of vortices which has well isolated and it is as function of temperature, then utilized suitable technique to extract the temperature depending on penetration depth, .So, this allowed to deduce the temperature dependent on density of superfluid and it has been compared with α-model consequences for a (2-band) of superconductor. When the superfluid density for the BaFe2xCoxAs2 (Over D x= 0.113) sample. As result, the two gap -model has been fitted to the data with Δ1=4.25kTc, Δ2=1.92kTc , =0.708, 1=0.293 then a2=1. However, When values of  for the BaFe2-xCoxAs2 (Over D x= 0.075) sample. Result of the superfluid density for BaFe2-xCoxAs2 with parameters are (Δ1=3.9k, Δ2=1.6k), =0.615 for Δ1, and =0.237, =1. Suitable parameters produce refer into the symmetry of the order parameter at hole pockets with the electron, and then the relative supports of the bands to the density of superfluid in the iron-based crystals.

Article Details

How to Cite
Hussein Ali Mohammed. (2023). Structures of vortex in Co-doped BaFe2As2 iron superconductors with different doping level by scanning Hall probe microscopy. Tikrit Journal of Pure Science, 22(11), 55–60. https://doi.org/10.25130/tjps.v22i11.914
Section
Articles

References

[1] Y. Kamihara, T. Watanabe, M. Hirano, and H.

Hosono, Iron-Based Layered Superconductor La[O1-

xFx]FeAs (x = 0.05−0.12) with Tc = 26 K. Journal

of the American Chemical Society 130, (2008) 3296.

[2] P. Gao, Y. Zhang,Y. Zhang, and E. Hellstrom,

Atomic and electronic structures of superconducting

BaFe2As2/SrTiO3 superlattices, PHYSICAL

REVIEW B 91, (2015), 104525.

[3] P. L. Alireza, Y. T. Ko, , and S. E. Sebastian,

Journal of physics. Condensed matter : an Institute of

Physics journal 21, (2009), 012208.

[4] Y. Nakajima, Y. Tsuchiya, T. Taen, T. Tamegai,

S. Okayasu, and M. Sasase, Enhancement of critical

current density in Co-doped BaFe2As2 with columnar

defects introduced by heavy-ion irradiation ,Physical

Review B 80, (2009), 012510,

[5] M .N. Konzen and S. Sefat, Lattice Parameters

Guide Superconductivity in Iron-Arsenides. Journal

of Physics: Condensed Matter, 29 (2017), 083001.

[6] R. Prozorov, M. A. Tanatar, B. Shen, P. Cheng,

H.-H. Wen, S. L. Bud’ko, and P. C. Canfield,

Magnetic order in the purely organic quasi-onedimensional

ferromagnet 2-benzimidazolyl nitronyl

nitroxide, Physical Review B 82, (2010),180513.

[7] K. Terashima, Y.Sekiba, J. H. and T. Takahashi,

Fermi surface nesting induced strong pairing in ironbased

superconductors. Proceedings of the National

Academy of Sciences, 106(18), (2009). p. 7330-7333.

[8] R. H. Liu; G. Wu; and H. Chen;Transport

properties and superconductivity in (M=La and K)

with double FeAs layers. EPL (Europhysics Letters),

84(2), (2008), p. 27010.

[9] R.Prozorov and R.W.Giannetta, Superconductor

Science and Technology 19, R41 (2006).

[10] A.C. Rose-Innes and A.C. Rhoderick,

Introduction to Superconductivity,Pergamon Press,

(1978).

[11] P. Gao, Y. Zhang, S. Y. Zhang, and Q. Pan,

Atomic and electronic structures of superconducting

BaFe2As2/SrTiO3superlattices,PHYSICAL REVIEW,

B 91, (2015), 104525.

[12] M. Reticcioli, G. Profeta, C. Franchini, A.

Continenza, Ru-doping on iron based pnictides: the

"unfolded" dominant role of structural effects for

superconductivity. Journal of Physics: Condensed

Matter,[v1],(2017),1701.

13] J. Bardeen and M. J. Stephen, Theory of the

Motion of Vortices in Superconductors, Physical

Review 140, (1965), A1197.

[14] P. W. Anderson and Y. B. Kim, Hard

Superconductivity:Theory of the Motion of

Abrikosov Flux Lines Reviews of Modern Physics

36, (1964), 39.