Concepedia

TLDR

Skyrmions are whirl‑like topological spin textures that hold promise for future magnetic data storage. The authors investigate whether ferroelectric polarization can be linked to skyrmion magnetic textures and whether such skyrmions can be controlled by electric fields. They study the lacunar spinel GaV4S8, whose orbital‑ordering transition at 44 K and magnetic phases below 13 K allow them to attribute spin‑driven ferroelectricity to exchange striction in each multiferroic phase. GaV4S8 is ferroelectric with ~1 μC cm⁻² polarization, exhibits spin‑driven excess polarizations in all magnetic phases—including a skyrmion lattice with strong spatial modulation near skyrmion cores—making it a unique, strongly magnetoelectric SkL host that could enable nondissipative electric‑field control of skyrmions.

Abstract

Skyrmions are whirl-like topological spin objects with high potential for future magnetic data storage. A fundamental question that is relevant to both basic research and application is whether ferroelectric (FE) polarization can be associated with skyrmions' magnetic texture and whether these objects can be manipulated by electric fields. We study the interplay between magnetism and electric polarization in the lacunar spinel GaV4S8, which undergoes a structural transition associated with orbital ordering at 44 K and reveals a complex magnetic phase diagram below 13 K, including ferromagnetic, cycloidal, and Néel-type skyrmion lattice (SkL) phases. We found that the orbitally ordered phase of GaV4S8 is FE with a sizable polarization of ~1 μC/cm(2). Moreover, we observed spin-driven excess polarizations in all magnetic phases; hence, GaV4S8 hosts three different multiferroic phases with coexisting polar and magnetic order. These include the SkL phase, where we predict a strong spatial modulation of FE polarization close to the skyrmion cores. By taking into account the crystal symmetry and spin patterns of the magnetically ordered phases, we identify exchange striction as the main microscopic mechanism behind the spin-driven FE polarization in each multiferroic phase. Because GaV4S8 is unique among known SkL host materials owing to its polar crystal structure and the observed strong magnetoelectric effect, this study is an important step toward the nondissipative electric field control of skyrmions.

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