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Advancing Antiferromagnetic Nitrides via Metal Alloy Nitridation

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arxiv 2505.04636 v1 pith:EJUNL4XK submitted 2025-05-08 cond-mat.mtrl-sci

Advancing Antiferromagnetic Nitrides via Metal Alloy Nitridation

classification cond-mat.mtrl-sci
keywords filmsnitridethinalloymagneticnitridationstructuraladvancing
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Nitride materials, valued for their structural stability and exceptional physical properties, have garnered significant interest in both fundamental research and technological applications. The fabrication of high-quality nitride thin films is essential for advancing their use in microelectronics and spintronics. Yet, achieving single-crystal nitride thin films with excellent structural integrity remains a challenge. Here, we introduce a straightforward yet innovative metallic alloy nitridation technique for the synthesis of stable single-crystal nitride thin films. By subjecting metal alloy thin films to a controlled nitridation process, nitrogen atoms integrate into the lattice, driving structural transformations while preserving high epitaxial quality. Combining nanoscale magnetic imaging with a diamond nitrogen-vacancy (NV) probe, X-ray magnetic linear dichroism, and comprehensive transport measurements, we confirm that the nitridated films exhibit a robust antiferromagnetic character with a zero net magnetic moment. This work not only provides a refined and reproducible strategy for the fabrication of nitride thin films but also lays a robust foundation for exploring their burgeoning device applications.

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