Stacking-dependent magnetic ordering in bilayer ScI$_{2}$
Soumyajit Sarkar, Soham Chandra

TL;DR
This study reveals how stacking configurations in bilayer ScI$_2$ influence magnetic interactions, enabling control over magnetic ground states while maintaining high thermal stability, with potential for spintronic applications.
Contribution
The paper provides a comprehensive first-principles and finite-temperature analysis of stacking-dependent magnetism in bilayer ScI$_2$, highlighting the ability to tune magnetic order via stacking without losing thermal robustness.
Findings
Interlayer exchange varies with stacking, being ferromagnetic in AA and BA, antiferromagnetic in AB.
All configurations exhibit magnetic ordering above room temperature, around 360-375 K.
Magnetic easy axis is out-of-plane, stable across monolayer and bilayer forms.
Abstract
Stacking-dependent magnetism in two-dimensional van der Waals materials offers an effective route for controlling magnetic order without chemical modification. Here, we present a combined first-principles and finite-temperature study of magnetic ordering in bilayer ScI with different stacking configurations. Using density functional theory with Hubbard- corrections, we investigate the structural, electronic, and magnetic properties of monolayer and bilayer ScI in AA, AB, and BA stackings. The electronic structure exhibits a spin-polarized ground state dominated by Sc- states near the Fermi level. Mapping total energies onto an effective Heisenberg spin Hamiltonian reveals strong intralayer ferromagnetic exchange that is largely insensitive to stacking, while the interlayer exchange depends strongly on stacking geometry, favoring ferromagnetic coupling for AA and BA…
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Taxonomy
Topics2D Materials and Applications · Heusler alloys: electronic and magnetic properties · Topological Materials and Phenomena
