Plane Point Contact Spectroscopy measurements of optimally Cobalt doped Ba-122 iron-pnictide superconductors
arXiv:1211.4659
Abstract
Point contact spectroscopy (PCS) is a technique which can reveal the size and symmetry of a superconducting gap () and is especially useful for new materials such as the iron-based superconductors. PCS is usually employed in conjunction with the extended Blonder-Tinkham-Klapwijk (BTK) model which is used to extract information such as the existence of nodes in from PCS data obtained on unconventional superconductors. The BTK model uses a dimensionless parameter to quantify the barrier strength across a normal metal - superconductor junction. We have used a unique feature of PCS which allows variation of to obtain crucial information about . We report our -dependent, plane PCS measurements on single crystals of the iron-based superconductor BaFeCoAs. Our measurements show that BaFeCoAs (=0.148) is a superconductor with two gaps which does not contain any nodes. The dependent point contact spectra rule out a pure symmetry and the gaps at optimal doping have negligible anisotropy.
11 pages, 4 figures
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