AI Article Synopsis

  • Magnetic materials with noncollinear spin textures are important for spintronics, requiring control over their length and energy scales for practical use.
  • The study compares two chiral helimagnets, CrNbS and CrTaS, revealing that while they have similar magnetic-phase diagrams, their electronic band structures differ significantly.
  • Results indicate that CrTaS has stronger ferromagnetic coupling and spin-orbit coupling, which influences the characteristics of their spin textures.

Article Abstract

Magnetic materials with noncollinear spin textures are promising for spintronic applications. To realize practical devices, control over the length and energy scales of such spin textures is imperative. The chiral helimagnets CrNbS and CrTaS exhibit analogous magnetic-phase diagrams with different real-space periodicities and field dependence, positioning them as model systems for studying the relative strengths of the microscopic mechanisms giving rise to exotic spin textures. Although the electronic structure of the Nb analogue has been experimentally investigated, the Ta analogue has received far less attention. Here, we present a comprehensive suite of electronic structure studies on both CrNbS and CrTaS using angle-resolved photoemission spectroscopy and density functional theory. We show that bands in CrTaS are more dispersive than their counterparts in CrNbS, resulting in markedly different Fermi wavevectors. The fact that their qualitative magnetic phase diagrams are nevertheless identical shows that hybridization between the intercalant and host lattice mediates the magnetic exchange interactions in both of these materials. We ultimately find that ferromagnetic coupling is stronger in CrTaS, but larger spin-orbit coupling (and a stronger Dzyaloshinskii-Moriya interaction) from the heavier host lattice ultimately gives rise to shorter spin textures.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10500995PMC
http://dx.doi.org/10.1021/acs.chemmater.3c01564DOI Listing

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