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Unique electronic state in ferromagnetic semiconductor FeCl$_{2}$ monolayer

Materials Science 2022-06-06 v2 Strongly Correlated Electrons

Abstract

Two-dimensional (2D) van der Waals (vdW) magnetic materials could be an ideal platform for ultracompact spintronic applications. Among them, FeCl2_{2} monolayer in the triangular lattice is subject to a strong debate. Thus, we critically examine its spin-orbital state, electronic structure, and magnetic properties, using a set of delicate first-principles calculations, crystal field level analyses, and Monte Carlo simulations. Our work reveals that FeCl2_{2} monolayer is a ferromagnetic (FM) semiconductor in which the electron correlation of the narrow Fe 3d3d bands determines the band gap of about 1.2 eV. Note that only when the spin-orbit coupling (SOC) is properly handled, the unique dd5^{5\uparrow}llz+^\downarrow_{z+} electronic ground state is achieved. Then, both the orbital and spin contributions (0.59 μB\mu_{\rm B} plus 3.56 μB\mu_{\rm B}) to the total magnetic moment well account for, for the first time, the experimental perpendicular moment of 4.3 μB\mu_{\rm B}/Fe. Moreover, we find that a compressive strain further stabilizes the dd5^{5\uparrow}llz+^\downarrow_{z+} ground state, and that the enhanced magnetic anisotropy and exchange coupling would boost the Curie temperature (TCT_{\rm C}) from 25 K for the pristine FeCl2_{2} monolayer to 69-102 K under 3%\%-5%\% compressive strain. Therefore, FeCl2_{2} monolayer is indeed an appealing 2D FM semiconductor.

Keywords

Cite

@article{arxiv.2204.07755,
  title  = {Unique electronic state in ferromagnetic semiconductor FeCl$_{2}$ monolayer},
  author = {Di Lu and Lu Liu and Yaozhenghang Ma and Ke Yang and Hua Wu},
  journal= {arXiv preprint arXiv:2204.07755},
  year   = {2022}
}

Comments

6 pages, 6 figures, 1 table

R2 v1 2026-06-24T10:49:47.966Z