Competition between superconductivity and magnetic/nematic order as a source of anisotropic superconducting gap in underdoped Ba$_{1-x}$K$_{x}$Fe$_{2}$As$_{2}$
H. Kim, M. A. Tanatar, W. E. Straszheim, K. Cho, J. Murphy, N., Spyrison, J.-Ph. Reid, Bing Shen, Hai-Hu Wen, R. M. Fernandes, R. Prozorov

TL;DR
This study investigates how magnetic and nematic orders influence the anisotropic superconducting gap in underdoped Ba$_{1-x}$K$_{x}$Fe$_{2}$As$_{2}$, revealing a transition from isotropic to anisotropic gaps with underdoping.
Contribution
It provides the first detailed analysis of the evolution of the superconducting gap anisotropy in hole-doped Ba$_{1-x}$K$_{x}$Fe$_{2}$As$_{2}$ across different doping levels, highlighting the role of magnetic/nematic competition.
Findings
Optimally doped samples exhibit isotropic, nodeless gaps.
Underdoped samples show power-law behavior indicating anisotropic gaps.
The competition between superconductivity and magnetic/nematic order is weaker in hole-doped compounds.
Abstract
The in-plane London penetration depth, , was measured using a tunnel diode resonator technique in single crystals of BaKFeAs with doping levels ranging from heavily underdoped, =0.16 (=7~K) to nearly optimally doped, = 0.34 (39 K). Exponential saturation of in the limit is found in optimally doped samples, with the superfluid density quantitatively described by a self-consistent -model with two nodeless isotropic superconducting gaps. As the doping level is decreased towards the extreme end of the superconducting dome at =0.16, the low-temperature behavior of becomes non-exponential and best described by the power-law , characteristic of strongly anisotropic gaps. The change between the…
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