CrAs monolayer: Low buckled two-dimensional half-metal ferromagnet
arXiv:1910.06935 · doi:10.1002/pssr.201900509
Abstract
\textit{Ab-initio} calculations based on density functional theory (DFT) are performed to study the structural, electronic, and magnetic properties of two-dimensional (2D) free-standing honeycomb CrAs. We show that CrAs has low buckled stable structure. Magnetic CrAs has larger buckling than non-magnetic CrAs. 2D-CrAs is a ferromagnetic semiconductor for lattice constant Å, and above this lattice constant CrAs is a half-metal ferromagnet. 2D-CrAs is shown to be half-metal ferromagnetic with magnetic moment of 3.0 per unit cell, at equilibrium structure. The orbital of band is completely empty in the spin-down state whereas it is almost occupied in the spin-up state, and the magnetic moment in the band is mainly dominated by the orbital of Cr. The and orbitals of band are partially occupied in the spin-up state and behaves as metal whereas they are insulator in the spin-down state. Phonon calculations confirm the thermodynamic stability of 2D-CrAs. The ferromagnetic (FM) and antiferromagnetic (AFM) interaction between the Cr atoms reveal that the FM state is more stable than the AFM state of 2D-CrAs.
Rapid Research Letters (Accepted, 2019)
References in corpus (8)
- Electric Field Effect in Atomically Thin Carbon Films
- Quantum ESPRESSO: a modular and open-source software project for quantum simulations of materials
- The electronic properties of graphene
- Arsenene: Two-dimensional buckled and puckered honeycomb arsenic systems
- Photovoltaic effect in few-layer black phosphorus PN junctions defined by local electrostatic gating
- First principles study of structural, magnetic and electronic properties of CrAs
- Magnetic monolayer LiN: Density Functional Theory Calculations
- Low energy bands and transport properties of chromium arsenide