Mesoscale Magnetostructural Phase Separation in Fe‐deficient Fe <sub>5</sub> GeTe <sub>2</sub>
Abstract
Abstract 2D Van der Waals ferromagnet Fe 5‐x GeTe 2 (F5GT) is promising for spintronic applications due to its high Curie temperature, layered structure, and ability to host complex magnetic textures. However, the origin of its sample‐dependent magnetic anisotropy remains unclear, hindering control of its magnetic behavior. Here, spatially resolved cryogenic scanning transmission electron microscopy (STEM) is used to correlatively map magnetism, lattice structure, and chemistry across atomic‐to‐micron scales. This is revealed that only mesoscale, not nanoscale, inclusions of a Fe‐deficient secondary phase significantly modify magnetic behavior, establishing a previously unrecognized critical length scale. This phase separation, induced by quenching, leads to in‐plane magnetic anisotropy, while slow cooling confines separation to a few nanometers and preserves out‐of‐plane anisotropy. These findings reconcile prior inconsistencies and establish a predictive framework for tuning magnetism in F5GT through thermal processing, with broader implications for controlling anisotropy in other 2D magnetic materials.
Article Details
Authors (8)
Haoyang Ni
Department of Materials Science and Engineering University of Illinois at Urbana‐Champaign Urbana Illinois 61801 USA
Eric R. Hoglund
Jordan A. Hachtel
Jian‐Min Zuo
Department of Materials Science and Engineering, Grainger College of Engineering University of Illinois Urbana Illinois USA
Lijun Wu
Yimei Zhu
Condensed Matter Physics and Materials Science Department, Brookhaven National Laboratory, Upton, NY, USA.
Andrew F. May
Materials Science and Technology Division Oak Ridge National Laboratory Oak Ridge Tennessee 37831 USA
Miaofang Chi