Hidden Topological Transitions in Emergent Magnetic Monopole Lattices
arXiv:2210.15816 · doi:10.1103/PhysRevB.107.094437
Abstract
Topological defects, called magnetic hedgehogs, realize emergent magnetic monopoles, which are not allowed in the ordinary electromagnetism described by Maxwell's equations. Such monopoles were experimentally discovered in magnets in two different forms: tetrahedral and cubic hedgehog lattices. The spin textures are modulated by the chemical composition, an applied magnetic field, and temperature, leading to quantum transport and optical phenomena through movement and pair annihilation of magnetic monopoles, but the theoretical understanding remains elusive, especially in the regions where different types of hedgehog lattices are competing. Here we propose a theoretical model that can stabilize both tetrahedral and cubic hedgehog lattices, and perform a thorough investigation of the phase diagram while changing the interaction parameters, magnetic field, and temperature, by using a recently developed method that delivers exact solutions in the thermodynamic limit. We find that the model exhibits various types of topological transitions with changes of the density of monopoles and antimonopoles, some of which are accompanied by anomalies in the thermodynamic quantities, while the others are hidden with less or no anomaly. We also find another hidden topological transition with pair annihilation of two-dimensional vortices in the three-dimensional system. These results not only provide useful information for understanding the existing experimental data, but also challenge the identification of hidden topological transitions and the exploration of emergent electromagnetism in magnetic monopole lattices.
15 pages, 12 figures
References in corpus (14)
- Physical foundations and basic properties of magnetic skyrmions
- Imaging the coupling between itinerant electrons and localised moments in the centrosymmetric skyrmion magnet GdRu2Si2
- Topological spin crystals by itinerant frustration
- Square skyrmion crystal in centrosymmetric itinerant magnets
- Nanometric skyrmion lattice from anisotropic exchange interactions in a centrosymmetric host
- Zoology of multiple-Q spin textures in a centrosymmetric tetragonal magnet with itinerant electrons
- Field-Direction Sensitive Skyrmion Crystals in Cubic Chiral Systems: Implication to -Electron Compound EuPtSi
- Spin excitation spectra in helimagnetic states: proper-screw, cycloid, vortex crystal, and hedgehog lattice
- Spin moiré engineering of topological magnetism and emergent electromagnetic fields
- Phase transitions between helices, vortices, and hedgehogs driven by spatial anisotropy in chiral magnets
- Magnetic field-temperature phase diagrams for multiple- magnetic orderings: Exact steepest descent approach to long-range interacting spin systems
- Phase degree of freedom and topology in multiple- spin textures
- Magnetic Hedgehog Lattice in a Centrosymmetric Cubic Metal
- Topological magnetic structures in MnGe: Neutron diffraction and symmetry analysis
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- Field-direction-dependent skyrmion crystals in noncentrosymmetric cubic magnets: A comparison between point groups and