Cross-State Alternating Magnetism in Two-Dimensional Systems.
basic_science · Level V
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- Record sourced from PubMed, PMID 41416355.
- Also identified by DOI 10.1021/acs.nanolett.5c04949.
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Abstract
Altermagnetism is characterized by alternating spin polarizations in both real and reciprocal spaces in a single physical state of material. Here, we introduce the physical state as a new degree of freedom and propose a theory by symmetry analysis for achieving alternating spin polarizations across two equivalent states in two-dimensional systems, which we term <i>cross-state alternating magnetism</i> (<i>cs</i>-AM). We validate the feasibility of <i>cs</i>-AM with a tight-binding model, showing that the requisite state transition for switching spin polarizations can be realized in altermagnets and even fully compensated ferrimagnets, via the flipping of a vertical electric polarization. <i>Ab initio</i> calculations demonstrate half-metallic <i>cs</i>-AM in a Lu<sub>3</sub>N<sub>2</sub>O<sub>2</sub> bilayer via interlayer sliding as well as a spin-valley locked altermagnetic state in a Cr<sub>2</sub>SeO bilayer under an applied electric field. Moreover, our theory can be extended to achieve cascaded manipulation of a series of alternating spin polarizations across different symmetry-connected state pairs by, for example, the joint action of interlayer stacking and intrinsic ferroelectricity.