Approaching itinerant magnetic quantum criticality through a Hund's coupling induced electronic crossover in the YFe$_2$Ge$_2$ superconductor
Abstract
Here, by conducting a systematic Y NMR study, we explore the nature of the magnetic ground state in a newly discovered iron-based superconductor YFeGe. An incoherent-to-coherent crossover due to the Hund's coupling induced electronic correlation is revealed below the crossover temperature . During the electronic crossover, both the Knight shift () and the bulk magnetic susceptibility () exhibit a similar nonmonotonic temperature dependence, and a so-called Knight shift anomaly is also revealed by a careful - analysis. Such an electronic crossover has been also observed in heavily hole-doped pnictide superconductors \emph{A}FeAs (\emph{A} = K, Rb, and Cs), which is ascribed to the Hund's coupling induced electronic correlation. Below , the spin-lattice relaxation rate divided by temperature shows a similar suppression as the Knight shift, suggesting the absence of critical spin fluctuations. This seems to be in conflict with a predicted magnetic quantum critical point (QCP) near this system. However, considering a -dependent "filter" effect on the transferred hyperfine field, a predominant spin fluctuation with A-type correlation would be perfectly filtered out at Y sites, which is consistent with the recent inelastic neutron scattering results. Therefore, our results confirm that, through a Hund's coupling induced electronic crossover, the magnetic ground state of YFeGe becomes close to an itinerant magnetic QCP with A-type spin fluctuations. In addition, the possible superconducting pairing due to spin fluctuations is also discussed.
Keywords
Cite
@article{arxiv.2002.08829,
title = {Approaching itinerant magnetic quantum criticality through a Hund's coupling induced electronic crossover in the YFe$_2$Ge$_2$ superconductor},
author = {D. Zhao and H. L. Wo and J. Li and D. W. Song and L. X. Zheng and S. J. Li and L. P. Nie and X. G. Luo and J. Zhao and T. Wu and X. H. Chen},
journal= {arXiv preprint arXiv:2002.08829},
year = {2020}
}
Comments
6 pages, 4 figures, supplementary information available upon request