Disordered magnetism in superconducting KFe2As2 single crystals
V. Grinenko, S.-L. Drechsler, M. Abdel-Hafiez, S. Aswartham, A. U. B., Wolter, S. Wurmehl, C. Hess, K. Nenkov, G. Fuchs, D. Efremov, Bernd, Holzapfel, Jeroen van den Brink, and Bernd Buechner

TL;DR
This study investigates disordered magnetic phases in high-quality KFe2As2 superconducting crystals, revealing cluster-glass and Griffiths phase behaviors through magnetization and specific heat measurements, and identifying their distinct magnetic properties.
Contribution
It provides the first detailed characterization of disordered magnetic phases in KFe2As2, distinguishing between cluster-glass and Griffiths-like behaviors using comprehensive magnetic and thermodynamic analysis.
Findings
Cluster-glass behavior with a freezing temperature T_f between 50-90 K.
Griffiths phase-like behavior with non-universal power-law scaling below 40 K.
Magnetic hysteresis observed only in cluster-glass samples.
Abstract
High-quality KFe2As2 (K122) single crystals synthesized by different techniques have been studied by magnetization and specific heat (SH) measurements. There are 2 types of samples both affected by disordered magnetic phases: (i) cluster-glass (CG) like or (ii) Griffiths phase (G) like. For (i) at low applied magnetic fields the T-dependence of the zero field cooled (ZFC) linear susceptibility (chi_l) exhibits an anomaly with an irreversible behavior in ZFC and field cooled (FC) data. This anomaly is related to the freezing temperature T_f. The extrapolated T_f to B=0 varies between 50 K and 90 K. Below T_f we observed a magnetic hysteresis in the field dependence of the isothermal magnetization (M(B)). The frequency shift of the freezing temperature delta T_f=Delta T_f/[T_f\Delta(\ln \nu)]\sim 0.05$ has an intermediate value, which provides evidence for the formation of a CG-like state…
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