arXiv · 2105.14555
Magnetic structure determination of rare-earth based, high moment, atomic laminates; potential parent materials for 2D magnets
Abstract
We report muon spin rotation ($\mu$SR) and neutron diffraction on the rare-earth based magnets (Mo$_{2/3}$RE$_{1/3}$)$_2$AlC, also predicted as parent materials for 2D derivatives, where RE = Nd, Gd (only ($\mu$SR), Tb, Dy, Ho and Er. By crossing information between the two techniques, we determine the magnetic moment ($m$), structure, and dynamic properties of all compounds. We find that only for RE = Nd and Gd the moments are frozen on a microsecond time scale. Out of these two, the most promising compound for a potential 2D high ($m$) magnet is the Gd variant, since the parent crystals are pristine with $m = 6.5 \pm 0.5 \mu_B$, N\'eel temperature of $29 \pm 1$ K, and the magnetic anisotropy between in and out of plane coupling is smaller than $10^{-8}$. This result suggests that magnetic ordering in the Gd variant is dominated by in-plane magnetic interactions and should therefore remain stable if exfoliated into 2D sheets.
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Daniel Potashnikov, Elad Nisan Caspi, Asaf Pesach, Quanzheng Tao, Johanna Rosen, Denis Sheptyakov, Hayden A. Evans, Clemens Ritter, Zaher Salman, Pietro Bonfa, Thierry Ouisse, Maxime Barbier, Oleg Rivin, Amit Keren. 2021-05-30. Magnetic structure determination of rare-earth based, high moment, atomic laminates; potential parent materials for 2D magnets. https://arxiv.org/abs/2105.14555
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