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Bipolarized Weyl semimetals and quantum crystal valley Hall effect in two-dimensional altermagnetic materials

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arxiv 2406.16603 v1 pith:JHTTYHR4 submitted 2024-06-24 cond-mat.mtrl-sci

Bipolarized Weyl semimetals and quantum crystal valley Hall effect in two-dimensional altermagnetic materials

classification cond-mat.mtrl-sci
keywords weylaltermagneticaltermagnetismbipolarizedcrystalhallmaterialsphysical
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Magnetism and topology are two major areas of condensed matter physics. The combination of magnetism and topology gives rise to more novel physical effects, which have attracted strongly theoretical and experimental attention. Recently, the concept of altermagnetism has been introduced, characterized by a dual nature: real-space antiferromagnetism and reciprocal-space anisotropic spin polarization. The amalgamation of altermagnetism with topology may lead to the emergence of previously unobserved topological phases and the associated physical effects. In this study, utilizing a four-band lattice model that incorporates altermagnetism and spin group symmetry, we demonstrate that type-I, type-II, and type-III bipolarized Weyl semimetals can exist in altermagnetic systems. Through the first-principles electronic structure calculations, we predict four ideal two-dimensional type-I altermagnetic bipolarized Weyl semimetals Fe$_2$WTe$_4$ and Fe$_2$MoZ$_4$ (Z=S,Se,Te). More significantly, we introduce the quantum crystal valley Hall effect, a phenomenon achievable in three of these materials namely Fe$_2$WTe$_4$, Fe$_2$MoS$_4$, and Fe$_2$MoTe$_4$, when spin-orbit coupling is considered. Furthermore, these materials have the potential to transition from a quantum crystal valley Hall phase to a Chern insulator phase under strain. In contrast, Fe$_2$MoSe$_4$ remains to be a Weyl semimetal under spin-orbit coupling but is distinguished by possessing only a single pair of Weyl points. Additionally, the position, polarization, and number of Weyl points in Fe$_2$WTe$_4$ and Fe$_2$MoZ$_4$ can be manipulated by adjusting the direction of the N\'eel vector. Consequently, Fe$_2$WTe$_4$ and Fe$_2$MoZ$_4$ emerge as promising experimental platforms for investigating the distinctive physical attributes of various altermagnetic topological phases.

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Cited by 6 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score.

  1. Third-order optical response in d-wave altermagnets: Analytical and numerical results from microscopic model

    cond-mat.mes-hall 2026-04 unverdicted novelty 7.0

    Third-order photoconductivities in d-wave altermagnets are determined solely by quantum metric and connection, with closed-form solutions when delta-bond hopping vanishes and perturbative solutions otherwise, verified...

  2. Intrinsic antiferromagnetic half-metal and topological phases from the ferrovalley states of the sliding bilayer altermagnets

    cond-mat.mtrl-sci 2025-09 conditional novelty 7.0

    Sliding bilayer altermagnets host antiferromagnetic half-metallicity and Chern insulator phases via spin-dependent interlayer hopping in ferrovalley states, demonstrated in V2OSSe by first-principles calculations.

  3. Ultrafast optical route to coupled ferroelectric and altermagnetic switching

    cond-mat.mtrl-sci 2026-03 conditional novelty 6.0

    LiV2F6 is predicted to host charge-order-induced altermagnetism and ferroelectricity that reverse together under ultrafast laser-driven charge transfer in about 15 fs.

  4. Quantum-metric-driven light-induced ferrovalley state in d-wave altermagnets

    cond-mat.mes-hall 2026-07 conditional novelty 5.0

    Predicted light-induced ferrovalley state in d-wave altermagnets whose orbital-selective gap reduction is proportional to the quantum metric, with no Berry-curvature contribution.

  5. Electronic and Magnonic Properties of $g$-Wave Altermagnetism in Intercalated Transition Metal Dichalcogenides

    cond-mat.str-el 2026-05 unverdicted novelty 5.0

    Effective models and first-principles calculations show g-wave altermagnetic spin splitting and chiral magnon nodes in Fe1/4NbS2 and V1/3NbS2 controlled by hopping anisotropy and single-ion terms.

  6. Classification and design of two-dimensional altermagnets

    cond-mat.mtrl-sci 2026-01 accept novelty 3.0

    A review that classifies two-dimensional altermagnets via spin-group theory, lists materials with large spin splitting, and outlines design strategies for experimental realization.