Riemannian geometric classification and emergent phenomena of magnetic textures
Koki Shinada, Naoto Nagaosa

TL;DR
This paper introduces a differential geometry-based classification of magnetic textures, revealing new scalar spin chiralities and emergent phenomena, including nonreciprocal responses driven by quantum geometric effects without spin-orbit coupling.
Contribution
It develops a novel geometric framework for classifying magnetic textures and identifies new scalar spin chiralities that characterize noncoplanarity, leading to the discovery of emergent phenomena.
Findings
Three classes of noncoplanar magnetic textures identified.
Geodesic scalar spin chirality induces nonreciprocal responses.
Pure orbital effects cause emergent band asymmetry without spin-orbit coupling.
Abstract
We propose a new classification of magnetic textures from the viewpoint of differential geometry. Magnetic textures are conventionally classified into collinear, coplanar, and noncoplanar magnets. These classes are typically characterized by the vector spin chirality (VSC) and the scalar spin chirality (SSC), which indicate noncollinearity and noncoplanarity, respectively. However, this conventional classification is incomplete: in particular, noncoplanar textures cannot be fully characterized by the SSC alone, as exemplified by conical magnets. To refine this classification, we analyze the curves and surfaces traced by spins in real space using differential geometry and introduce two novel scalar spin chiralities that properly characterize noncoplanarity: the geodesic scalar spin chirality and the torsional scalar spin chirality. These quantities are directly connected to differential…
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Taxonomy
TopicsTopological Materials and Phenomena · Multiferroics and related materials · Metamaterials and Metasurfaces Applications
