Sliding-induced ferrovalley polarization and possible antiferromagnetic half-metal in bilayer altermagnets
arXiv:2509.00430 · doi:10.15302/frontphys.2026.075203
Abstract
Altermagnets, a newly discovered class of materials, exhibit zero net magnetization while hosting spin-split electronic bands. However, monolayer altermagnets maintain degenerate band gaps at the high-symmetry X and Y points in the Brillouin zone, manifesting a paravalley phase characterized by unpolarized valley states. In this work, we demonstrate that spontaneously broken valley degeneracy can be achieved through interlayer sliding in engineered MAB and MAAB bilayer altermagnets by first-principles calculations and minimal microscopic model. We propose a promising route to achieve antiferromagnetic half-metal driven by sliding and emergent ferrovalley phase without applied electric field, which is realized in the VSSeO engineered bilayer. Our calculations also reveal that MoOO exhibits the largest valley splitting gap of ~0.31 eV, making it a promising candidate for valley-spin valve devices. Furthermore, band structure calculations on MoAAO materials demonstrate that increasing the difference in atomic number (Z) between A and A site atoms effectively enhances valley polarization. This work establishes a novel platform for discovering and controlling ferrovalley states in altermagnetic systems.
10 pages, 5 figures