Consequences and control of multi-scale (dis)order in chiral magnetic textures
Berit H. Goodge, Oscar Gonzalez, Lilia S. Xie, D. Kwabena Bediako

TL;DR
This study investigates how atomic-scale order and disorder in transition metal-intercalated TMDs influence chiral magnetic textures and bulk magnetic properties, providing insights for spintronic device development.
Contribution
It offers a systematic, multi-scale analysis of atomic-scale (dis)order effects on magnetic behavior in intercalated TMDs, filling a gap in current understanding.
Findings
Atomic-scale order affects mesoscale spin textures.
Subtle lattice changes tune magnetic responses.
Direct imaging links atomic structure to magnetic properties.
Abstract
Transition metal-intercalated transition metal dichalcogenides (TMDs) are promising platforms for next-generation spintronic devices based on their wide range of electronic and magnetic phases, which can be tuned by varying the host lattice or the identity of the intercalant, along with its stoichiometry and spatial order. Some of these compounds host a chiral magnetic phase in which the helical winding of magnetic moments propagates along a high-symmetry crystalline axis. Previous studies have demonstrated that variation in intercalant concentrations can have a dramatic impact on the formation of chiral domains and ensemble magnetic properties. However, a systematic and comprehensive study of how atomic-scale order and disorder impacts collective magnetic behavior are so far lacking. Here, we leverage a combination of imaging modes in the (scanning) transmission electron microscope…
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Taxonomy
TopicsMagnetic properties of thin films · Multiferroics and related materials · ZnO doping and properties
