Coexistence of Merons with Skyrmions in the Centrosymmetric van der Waals Ferromagnet Fe 5- x GeTe 2 .
Brian W CasasYue LAlex MoonYan XinConor McKeeverJuan MacyAmanda K Petford-LongCharudatta M PhatakElton J G SantosEun-Sang ChoiLuis BalicasPublished in: Advanced materials (Deerfield Beach, Fla.) (2023)
Fe 5- x GeTe 2 is a centrosymmetric, layered van der Waals (vdW) ferromagnet that displays Curie temperatures T c (270-330 K) that are within the useful range for spintronic applications. However, little is known about the interplay between its topological spin textures (e.g., merons, skyrmions) with technologically relevant transport properties such as the topological Hall effect (THE), or topological thermal transport. Here, we show via high-resolution Lorentz transmission electron microscopy that merons and anti-meron pairs coexist with Néel skyrmions in Fe 5- x GeTe 2 over a wide range of temperatures and probe their effects on thermal and electrical transport. We detect a THE, even at room T, that senses merons at higher T's as well as their coexistence with skyrmions as T is lowered indicating an on-demand thermally driven formation of either type of spin texture. Remarkably, we also observe an unconventional THE in absence of Lorentz force and attribute it to the interaction between charge carriers and magnetic field-induced chiral spin textures. Our results expose Fe 5-x GeTe 2 as a promising candidate for the development of applications in skyrmionics/meronics due to the interplay between distinct but coexisting topological magnetic textures and unconventional transport of charge/heat carriers. This article is protected by copyright. All rights reserved.
Keyphrases
- single molecule
- high resolution
- room temperature
- density functional theory
- electron microscopy
- metal organic framework
- transition metal
- aqueous solution
- mass spectrometry
- visible light
- living cells
- magnetic resonance imaging
- quantum dots
- magnetic resonance
- heat stress
- computed tomography
- high glucose
- ionic liquid
- diabetic rats
- oxidative stress
- solar cells
- highly efficient
- gold nanoparticles
- molecularly imprinted
- reduced graphene oxide