Magnetic order in the computational 2D materials database (C2DB) from high throughput spin spiral calculations

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Main Authors: Sødequist, Joachim, Olsen, Thomas
Format: Preprint
Published: 2023
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author Sødequist, Joachim
Olsen, Thomas
author_facet Sødequist, Joachim
Olsen, Thomas
contents We report a detailed investigation of the magnetic order in 192 stable magnetic two-dimensional materials from the Computational 2D Materials Database having one magnetic atom in the unit cell. The calculations are based on a systematic workflow that employs spin spiral calculations and yields the magnetic order in terms of a two-dimensional ordering vector $\mathbf{Q}$. We then include spin-orbit coupling to extract the easy and hard axes for collinear structures and the orientation of spiral planes in non-collinear structures. Finally, for all predicted ferromagnets we compute the Dzyaloshinskii-Moriya interactions and determine whether or not these are strong enough to overcome the magnetic anisotropy and stabilise a chiral spin spiral ground state. These steps completely determines the ground state order within the spiralling ansatz. We find 58 ferromagnets, 21 collinear anti-ferromagnets, and 85 non-collinear ground states of which 15 are chiral spin spirals driven by Dzyaloshinskii-Moriya interactions. The results show that non-collinear order is in fact as common as collinear order in these materials and emphasise the need for detailed investigation of the magnetic ground state when reporting magnetic properties of new materials. Furthermore, non-collinear order typically breaks symmetries inherent to the lattice and may give rise to emergent properties such as multiferroicity, magnetoelectricity or second order optical effects that would be predicted as absent based on a collinear assumption.
format Preprint
id arxiv_https___arxiv_org_abs_2309_11945
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Magnetic order in the computational 2D materials database (C2DB) from high throughput spin spiral calculations
Sødequist, Joachim
Olsen, Thomas
Materials Science
We report a detailed investigation of the magnetic order in 192 stable magnetic two-dimensional materials from the Computational 2D Materials Database having one magnetic atom in the unit cell. The calculations are based on a systematic workflow that employs spin spiral calculations and yields the magnetic order in terms of a two-dimensional ordering vector $\mathbf{Q}$. We then include spin-orbit coupling to extract the easy and hard axes for collinear structures and the orientation of spiral planes in non-collinear structures. Finally, for all predicted ferromagnets we compute the Dzyaloshinskii-Moriya interactions and determine whether or not these are strong enough to overcome the magnetic anisotropy and stabilise a chiral spin spiral ground state. These steps completely determines the ground state order within the spiralling ansatz. We find 58 ferromagnets, 21 collinear anti-ferromagnets, and 85 non-collinear ground states of which 15 are chiral spin spirals driven by Dzyaloshinskii-Moriya interactions. The results show that non-collinear order is in fact as common as collinear order in these materials and emphasise the need for detailed investigation of the magnetic ground state when reporting magnetic properties of new materials. Furthermore, non-collinear order typically breaks symmetries inherent to the lattice and may give rise to emergent properties such as multiferroicity, magnetoelectricity or second order optical effects that would be predicted as absent based on a collinear assumption.
title Magnetic order in the computational 2D materials database (C2DB) from high throughput spin spiral calculations
topic Materials Science
url https://arxiv.org/abs/2309.11945