Enhanced moments of Eu in single crystals of the metallic helical antiferromagnet EuCo{2-y}As2
N. S. Sangeetha, V. K. Anand, Eduardo Cuervo-Reyes, V. Smetana, A.-V., Mudring, D. C. Johnston

TL;DR
This study investigates the magnetic properties of EuCo{2-y}As2 single crystals, revealing enhanced Eu moments, complex magnetic transitions, and phase diagrams consistent with molecular field theory, advancing understanding of its antiferromagnetic behavior.
Contribution
The paper provides detailed experimental and theoretical analysis of EuCo{2-y}As2's magnetic properties, including enhanced Eu moments and complex magnetic transitions, which were not previously characterized.
Findings
Enhanced Eu moments observed in most crystals.
Identification of a first-order spin-flop transition and subsequent metamagnetic transitions.
Magnetic phase diagrams consistent with molecular field theory predictions.
Abstract
The compound EuCo{2-y}As2 with the tetragonal ThCr2Si2 structure is known to contain Eu{+2} ions with spin S = 7/2 that order below a temperature TN = 47 K into an antiferromagnetic (AFM) proper helical structure with the ordered moments aligned in the tetragonal ab plane, perpendicular to the helix axis along the c axis, with no contribution from the Co atoms. Here we carry out a detailed investigation of the properties of single crystals. Enhanced ordered and effective moments of the Eu spins are found in most of our crystals. Electronic structure calculations indicate that the enhanced moments arise from polarization of the d bands, as occurs in ferromagnetic Gd metal. Electrical resistivity measurements indicate metallic behavior. The low-field in-plane magnetic susceptibilities chi{ab}(T < TN) for several crystals are reported that are fitted well by unified molecular field theory…
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