Evolution from helical to collinear ferromagnetic order of the Eu$^{2+}$ spins in RbEu(Fe$_{1-x}$Ni$_{x}$)$_{4}$As$_{4}$
Qianhui Xu, Yi Liu, Sijie Hao, Jiahui Qian, Cheng Su, Chin-Wei Wang,, Thomas Hansen, Zhendong Fu, Yixi Su, Wei Li, Guang-Han Cao, Yinguo Xiao, and, Wentao Jin

TL;DR
This study investigates how Eu$^{2+}$ spins in RbEu(Fe$_{1-x}$Ni$_{x}$)$_{4}$As$_{4}$ evolve from helical to collinear ferromagnetic order as Ni doping suppresses superconductivity, combining neutron diffraction and first-principles calculations.
Contribution
It reveals the doping-dependent magnetic transition from helical to collinear ferromagnetic order and explains it through RKKY interaction changes, supported by experimental and theoretical analysis.
Findings
Helical magnetic order in superconducting samples.
Transition to collinear ferromagnetic order in non-superconducting samples.
RKKY interaction explains the evolution of magnetic structure.
Abstract
The ground-state magnetic structures of the Eu spins in recently discovered RbEu(FeNi)As superconductors have been investigated by neutron powder diffraction measurements. It is found that as the superconductivity gets suppressed with the increase of Ni doping, the magnetic propagation vector of the Eu sublattice diminishes, corresponding to the decrease of the rotation angle between the moments in neighboring Eu layers. The ferromagnetic Eu layers are helically modulated along the axis with an incommensurate magnetic propagation vector in both the ferromagnetic superconductor RbEu(FeNi)As and the superconducting ferromagnet RbEu(FeNi)As. Such a helical structure transforms into a purely collinear ferromagnetic structure for non-superconducting…
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