Valley-dependent electronic properties in two-dimensional altermagnetic iron-based transition metal chalcogenides
An-Dong Fan, Yong-Kun Wang, Jin-Yang Li, and Si Li

TL;DR
This paper identifies monolayer iron-based transition metal chalcogenides as promising altermagnetic materials with unique valley-dependent electronic properties, including valley polarization and spin phenomena, relevant for advanced nanoelectronic applications.
Contribution
It introduces a new class of altermagnetic 2D materials with valley-dependent properties and explores their strain and doping effects, expanding the understanding of valleytronics and spintronics.
Findings
Valley-dependent spin splitting in nonrelativistic band structures.
Strain-induced valley degeneracy lifting and polarization.
Generation of anisotropic noncollinear spin currents.
Abstract
Altermagnets represent a newly identified third class of collinear magnets and have recently emerged as a focal point in condensed matter physics. In this work, through first-principles calculations and theoretical analysis, we identify monolayer FeMoX (X = S, Se, Te) and FeWTe, a class of iron-based transition metal chalcogenides, as promising altermagnetic materials. These systems are found to be semiconductors exhibiting spin splitting in their nonrelativistic band structures, indicative of intrinsic altermagnetic ordering. Remarkably, their valence bands feature a pair of valleys at the time-reversal-invariant momenta X and Y points. Unlike conventional valley systems, these valleys are related by crystal symmetries rather than time-reversal symmetry. We investigate valley-dependent physical phenomena in these materials, including Berry curvature and optical circular…
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Taxonomy
Topics2D Materials and Applications · Iron-based superconductors research · Topological Materials and Phenomena
