Riemannian geometric classification and emergent phenomena of magnetic textures
arXiv:2603.05955 · doi:10.1103/2szj-s2nx
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 geometry: the former reflects the geodesic curvature while the latter is related to the torsion. Based on these chiralities, we identify three distinct classes of noncoplanar magnetic textures. Furthermore, analogous to the roles of the VSC and the conventional SSC in emergent electrodynamics, the geodesic SSC gives rise to novel emergent phenomena. By constructing a semiclassical theory including nonadiabatic effects and higher-order spatial gradients of magnetic textures, we demonstrate that the geodesic SSC induces an emergent band asymmetry, leading to nonreciprocal responses as a quantum geometric effect. This mechanism is a purely orbital effect, requiring no spin-orbit coupling, and the resulting discussion runs in parallel with the conventional picture of the topological Hall effect driven by the SSC. The geometric viewpoint developed here will provide broad new insights into classification, quantum geometry, emergent electrodynamics, and a wider variety of emergent phenomena.
References in corpus (20)
- Spin current and magneto-electric effect in non-collinear magnets
- Nanometric square skyrmion lattice in a centrosymmetric tetragonal magnet
- Anomalous Hall effect in -type organic antiferromagnets
- Multipole classification in 122 magnetic point groups for unified understanding of multiferroic responses and transport phenomena
- Multi-step topological transitions among meron and skyrmion crystals in a centrosymmetric magnet
- Real space Berry curvature of itinerant electron systems with spin-orbit interaction
- Nonlinear nonreciprocal transport in antiferromagnets free from spin-orbit coupling
- Emergent Magneto-multipoles and Nonlinear Responses of a Magnetic Hopfion
- Symmetry analysis with spin crystallographic groups: Disentangling effects free of spin-orbit coupling in emergent electromagnetism
- Nonreciprocal Transport in Noncoplanar Magnetic Systems without Spin-Orbit Coupling, Net Scalar Chirality, or Magnetization
- Electronic scattering off a magnetic hopfion
- Band-asymmetry-driven nonreciprocal electronic transport in a helimagnetic semimetal α-EuP
- Magnetic generation and switching of topological quantum phases in a trivial semimetal
- Enhanced Electrical Magnetochiral Effect by Spin-hedgehog Lattice Structural Transition
- Nonreciprocal transport in a room-temperature chiral magnet
- Magnetoelectric control of spin helicity and nonreciprocal charge transport in a multiferroic metal
- Phase shifts, band geometry and responses in triple-Q charge and spin density waves
- Emergent curved space and gravitational lensing in quantum materials
- Field-driven band asymmetry and non-reciprocal transport in a helimagnet
- Observation of distorted tilted conical phase at the surface of a bulk chiral magnet with resonant elastic x-ray scattering