Tuning the Curie temperature of a 2D magnet/topological insulator heterostructure to above room temperature by epitaxial growth
arXiv:2308.13620 · doi:10.1103/PhysRevMaterials.7.104004
Abstract
Heterostructures of two-dimensional (2D) van der Waals (vdW) magnets and topological insulators (TI) are of substantial interest as candidate materials for efficient spin-torque switching, quantum anomalous Hall effect, and chiral spin textures. However, since many of the vdW magnets have Curie temperatures below room temperature, we want to understand how materials can be modified to stabilize their magnetic ordering to higher temperatures. In this work, we utilize molecular beam epitaxy to systematically tune the Curie temperature () in thin film FeGeTe/BiTe from bulk-like values (220 K) to above room temperature by increasing the growth temperature from 300 C to 375 C. For samples grown at 375 C, cross-sectional scanning transmission electron microscopy (STEM) reveals the spontaneous formation of different FeGeTe compositions (e.g. FeGeTe and FeGeTe) as well as intercalation in the vdW gaps, which are possible origins of the enhanced Curie temperature. This observation paves the way for developing various FeGeTe/TI heterostructures with novel properties.
8 pages, 4 figures
References in corpus (4)
- 2D materials and van der Waals heterostructures
- Magnetic 2D materials and heterostructures
- Large Anomalous Hall Effect in Topological Insulators with Proximitized Ferromagnetic Insulators
- Chemical Migration and Dipole Formation at van der Waals Interfaces between Magnetic Transition Metal Chalcogenides and Topological Insulators