Projects per year
Description
Chromium ditelluride, CrTe , is an attractive candidate van der Waals material for hosting 2D magnetism. However, how the room-temperature ferromagnetism of the bulk evolves as the sample is thinned to the single-layer limit has proved controversial. This, in part, reflects its metastable nature, vs. a series of more stable self-intercalation compounds with higher relative Cr:Te stoichiometry. Here, exploiting a recently-developed method for enhancing nucleation in molecular beam epitaxy growth of transition-metal chalcogenides, we
demonstrate the selective stabilisation of high-coverage CrTe and Cr Te epitaxial monolayers. Combining X-ray magnetic circular dichroism, scanning tunnelling microscopy, and temperature-dependent angle-resolved photoemission, we demonstrate that both compounds order magnetically with a similar Tc. We find, however, that monolayer CrTe forms as an anti-ferromagnetic metal, while monolayer Cr Te hosts an intrinsic ferromagnetic semiconducting state. This work thus demonstrates that control over the self-intercalation of metastable Cr-based chalcogenides provides a powerful route for tuning both their metallicity and magnetic structure, establishing the Cr-Te system as a flexible materials class for future 2D spintronics.
demonstrate the selective stabilisation of high-coverage CrTe and Cr Te epitaxial monolayers. Combining X-ray magnetic circular dichroism, scanning tunnelling microscopy, and temperature-dependent angle-resolved photoemission, we demonstrate that both compounds order magnetically with a similar Tc. We find, however, that monolayer CrTe forms as an anti-ferromagnetic metal, while monolayer Cr Te hosts an intrinsic ferromagnetic semiconducting state. This work thus demonstrates that control over the self-intercalation of metastable Cr-based chalcogenides provides a powerful route for tuning both their metallicity and magnetic structure, establishing the Cr-Te system as a flexible materials class for future 2D spintronics.
| Date made available | 26 May 2025 |
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| Publisher | University of St Andrews |
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Controlling and integrating 2D magnetism: Controlling and integrating 2D magnetism in epitaxial van der Waals heterostructures
King, P. (PI) & Wahl, P. (CoI)
1/08/23 → 31/07/26
Project: Standard
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Engineered Quantum States: Engineered quantum states via atmoic-scale assembly of artificial 2D heterostructures
King, P. (PI)
1/08/17 → 31/07/22
Project: Standard
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Designer Oxides: Designer Oxides: Reactive-Oxide Molecular Beam Epitaxy System
Wahl, P. (PI), Höfling, S. (CoI), Irvine, J. (CoI), King, P. (CoI) & Woollins, J. D. (CoI)
1/09/15 → 31/08/17
Project: Standard
Research output
- 1 Article
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From ferromagnetic semiconductor to antiferromagnetic metal in epitaxial CrxTey monolayers
Kushwaha, N., Armitage, O., Edwards, B., Trzaska, L., Rigden, J., Bencok, P., Biswas, D., Lee, T.-L., Sanders, C., van der Laan, G., Wahl, P., King, P. D. C. & Rajan, A., 24 May 2025, In: npj Quantum Materials. 10, 7 p., 50.Research output: Contribution to journal › Article › peer-review
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