Type II multiferroic order in two-dimensional transition metal halides from first principles spin-spiral calculations
Joachim S{\o}dequist, Thomas Olsen

TL;DR
This study uses first-principles calculations to identify and analyze spin spiral magnetic ground states in two-dimensional transition metal halides, revealing their potential as type II multiferroics with coupled magnetic and polar properties.
Contribution
It introduces a computational approach combining generalized Bloch theorem and non-collinear DFT to discover spin spiral ground states in 2D transition metal halides, including effects of spin-orbit coupling and Hubbard corrections.
Findings
Incommensurate spin spirals induce polarization in most materials.
Polar axes are strongly dependent on spiral plane orientation.
Hubbard corrections significantly affect the magnetic ground states.
Abstract
We present a computational search for spin spiral ground states in two-dimensional transition metal halides that are experimentally known as van der Waals bonded bulk materials. Such spin spirals break the rotational symmetry of the lattice and lead to polar ground states where the axis of polarization is strongly coupled to the magnetic order (type II multiferroics). We apply the generalized Bloch theorem in conjunction with non-collinear density functional theory calculations to find the spiralling vector that minimizes the energy and then include spin-orbit coupling to calculate the preferred orientation of the spin plane with respect to the spiral vector. We find a wide variety of magnetic orders ranging from ferromagnetic, stripy anti-ferromagnetic, 120 non-collinear structures and incommensurate spin spirals. The latter two introduce polar axes and are found in the…
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Taxonomy
TopicsPerovskite Materials and Applications · Solid-state spectroscopy and crystallography · Inorganic Fluorides and Related Compounds
