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Neutron Diffraction Investigations of the Magnetic Ordering in Fe Br 2 , Co Br 2 , Fe Cl 2 , and Co Cl 2

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TLDR
In this paper, the existence of magnetic ordering in hexagonal layer-type structures has been investigated on anhydrous Fe${\mathrm{Br}} and cobalt compounds.
Abstract
Neutron diffraction experiments have been performed on anhydrous Fe${\mathrm{Br}}_{2}$, Co${\mathrm{Br}}_{2}$, Fe${\mathrm{Cl}}_{2}$, and Co${\mathrm{Cl}}_{2}$ at temperatures from 295\ifmmode^\circ\else\textdegree\fi{}K to 4.2\ifmmode^\circ\else\textdegree\fi{}K to investigate the existence of magnetic ordering in these hexagonal layer-type structures. All four compounds have an antiferromagnetic transition at low temperatures to structures in which the atomic magnetic moments within a metal layer form ferromagnetic sheets and the moments in adjacent layers are antiparallel. In the iron compounds the moments are oriented parallel to the hexagonal $c$ axis and in the cobalt compounds the moment orientation is perpendicular to that axis. Values of the atomic magnetic moments are close to those expected for the divalent metallic ions if the orbital contribution is quenched. Small-angle scattering experiments on Fe${\mathrm{Cl}}_{2}$ and Co${\mathrm{Cl}}_{2}$ have shown that the ferromagnetic coupling between moments within a layer is much stronger than the antiferromagnetic coupling between atoms in adjacent layers, and single-crystal investigations on these two compounds have determined the method by which large net magnetization values are obtained at temperatures below ${T}_{N}$ in moderate magnetic fields.

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Experiments on simple magnetic model systems

TL;DR: In this article, a review of the theoretical and experimental results obtained on simple magnetic model systems on magnetic lattices of dimensionality 1, 2, and 3 is presented, with particular attention paid to the approximation of these model systems in real crystals, viz how they can be realized or be expected to exist in nature.
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Crystal and Magnetic Structures in Layered, Transition Metal Dihalides and Trihalides

TL;DR: A brief overview of binary transition metal dihalides and trihalides is given, summarizing their crystallographic properties and long-range-ordered magnetic structures, focusing on those materials with layered crystal structures and partially filled d-shells as discussed by the authors.
Journal ArticleDOI

Probing and controlling magnetic states in 2D layered magnetic materials

TL;DR: In this article, the authors survey the physical properties of the large class of layered magnetic materials, and discuss recent advances in the study of these materials in the 2D limit, including optical and electrical techniques used for probing 2D magnetic materials and mechanisms for reorienting and/or switching 2D magnets by electric fields.
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Two-Dimensional Intrinsic Half-Metals With Large Spin Gaps

TL;DR: A family of three magnetic two-dimensional materials with half-metallic band structures, FeCl2, FeBr2, and FeI2, are predicted, which should make these materials useful for 2D spin valves and other spintronic applications.
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