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Electric and spin current vortices in altermagnets

dc.contributor.authorHerasymchuk, Arsen
dc.contributor.authorBergson Hallberg, Karl
dc.contributor.authorWegner Hodt, Erik
dc.contributor.authorLinder, Jacob
dc.contributor.authorGorbar, Eduard
dc.contributor.authorSukhachov, Pavlo
dc.date.accessioned2026-07-13T08:11:28Z
dc.date.issued2025-12-02
dc.description.abstractAltermagnets constitute a class of collinear magnets with momentum-dependent spin splitting and vanishing net magnetization. Direct observation of the characteristic altermagnetic spin splitting, however, remains challenging. Indirect signatures can be obtained via transport studies, which so far have only considered homogeneous driving fields. We propose to leverage nonuniform electric fields and spin density gradients to probe the shape and the spin polarization of altermagnetic Fermi surfaces via transport measurements. By using both a semiclassical Boltzmann approach and a lattice Keldysh formalism, we show that altermagnets excite swirling electric and spin currents whose profiles depend on the relative orientation of altermagnetic lobes with respect to the sample boundaries. These currents can be measured via magnetometry techniques. Unlike previous proposals considering the hydrodynamic regime of transport, swirling currents are observed even in the Ohmic regime and rely exclusively on the altermagnetic spin splitting, with no swirls observed in ferromagnets. The electric and spin current vortices predicted here provide a different altermagnetic signature in an experimentally accessible setup.
dc.identifier.doi10.1103/3sw6-y8vf
dc.identifier.urihttps://dspace.bitp.kyiv.ua/handle/123456789/305
dc.language.isoen
dc.publisherPhysical Review B
dc.titleElectric and spin current vortices in altermagnets
dc.typearticle
dspace.entity.typePublication

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