Ferromagnetism of sputtered Fe3GeTe2 ultrathin films in the absence of two-dimensional crystalline order
Qianwen Zhao, ChaoChao Xia, Hanying Zhang, Baiqing Jiang, Tunan Xie,, Kaihua Lou, and Chong Bi

TL;DR
This study demonstrates that ferromagnetism in ultrathin Fe3GeTe2 films persists even in an amorphous state, challenging the notion that 2D crystalline order is essential for ferromagnetic properties, thus enabling scalable spintronics applications.
Contribution
It reveals that ferromagnetism in Fe3GeTe2 does not depend on long-range crystalline order, supporting large-scale amorphous film fabrication for spintronics.
Findings
Ferromagnetism persists in amorphous Fe3GeTe2 films.
Curie temperature remains similar in amorphous and crystalline states.
Unconventional domain wall transport observed in amorphous films.
Abstract
The discovery of ferromagnetism in two-dimensional (2D) monolayers has stimulated growing research interest in both spintronics and material science. However, these 2D ferromagnetic layers are mainly prepared through an incompatible approach for large-scale fabrication and integration, and moreover, a fundamental question whether the observed ferromagnetism actually correlates with the 2D crystalline order has not been explored. Here, we choose a typical 2D ferromagnetic material, Fe3GeTe2, to address these two issues by investigating its ferromagnetism in an amorphous state. We have fabricated nanometer-thick amorphous Fe3GeTe2 films approaching the monolayer thickness limit of crystallized Fe3GeTe2 (0.8 nm) through magnetron sputtering. Compared to crystallized Fe3GeTe2, we found that the basic ferromagnetic attributes, such as the Curie temperature that directly reflects magnetic…
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Taxonomy
Topics2D Materials and Applications · Quantum Dots Synthesis And Properties · Chalcogenide Semiconductor Thin Films
