Title :
Effect of 3d Metal (Co and Ni) Doping on the Superconductivity of FeSe
Te
Author :
Kumar, Anuj ; Tandon, R.P. ; Awana, V.P.S.
Author_Institution :
Quantum Phenomena & Applic. Div., Nat. Phys. Lab. (CSIR), New Delhi, India
Abstract :
We report the effect of 3d metal Cobalt (Co) and Nickel (Ni) doping on the FeTe0.5 Se0.5 superconductor with the nominal composition range Fe 1 - xM xTe 0.5Se 0.5 ( M = Co, Ni and x = 0.00, 0.01 0.02, 0.05 , and 0.10). Samples are synthesized through standard solid state reaction route and all are crystallize in single phase tetragonal structure with space group P4/nmm. The lattice parameters `a ´, `c ´ and volume decrease with increase in Co and Ni content, although not monotonically. In fact the ` a´ lattice parameter is nearly unaffected for Co doped samples. The superconducting transition temperature (Tc) is measured from both DC and AC magnetic susceptibility, which decrease with increase in Ni or Co content. Both Co and Ni suppress Tc and drive the system into the normal state. Interestingly, Ni suppresses the superconductivity much faster than the Co. This indicates less effect on in-plane Fe-Se distances and thus reduced disorder in case of Co when compared with Ni substation at Fe site in FeTe0.5Se0.5 superconductor. It is concluded that in-plane disorder on superconducting Fe-Se and Fe-Se-Se planes directly affects superconductivity in FeTe 0.5Se 0.5 superconductor.
Keywords :
cobalt compounds; crystal growth from solution; crystallisation; doping profiles; high-temperature superconductors; iron compounds; lattice constants; magnetic susceptibility; nickel compounds; space groups; superconducting transition temperature; tellurium compounds; 3d coblat doping; 3d nickel doping; AC magnetic susceptibility; DC magnetic susceptibility; Fe1-xCoxTe0.5Se0.5; Fe1-xNixTe0.5Se0.5; crystallization; doping content; iron-based pnictides; lattice parameters; single phase tetragonal structure; space group P4-nmm; standard solid state reaction route; superconducting transition temperature; superconductivity; Doping; High temperature superconductors; Iron; Lattices; Nickel; Superconducting transition temperature; Fe chalcogenides; FeSe$_{0.5}$ Te$_{0.5}$ ; magnetization; plane disorder;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2012.2201215