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Realisation of epitaxial ultra-thin Kagome metal FeSn films

dc.contributor.authorBlyth, Jen_AU
dc.contributor.authorZhao, MTen_AU
dc.contributor.authorSridhar, Sen_AU
dc.contributor.authorCauser, GLen_AU
dc.contributor.authorFuhrer, MSen_AU
dc.contributor.authorTadich, Aen_AU
dc.contributor.authorEdmonds, MTen_AU
dc.date.accessioned2026-02-26T07:33:50Zen_AU
dc.date.issued2024-02-06en_AU
dc.date.statistics2025-01-09en_AU
dc.description.abstractKagome metals, a new class of metal, have recently attracted significant attention due to their rich topological, strong electron-correlated and magnetic properties. These properties arise from the corner-sharing, triangular geometry that can facilitate both Dirac bands (massless electrons) and flat bands (massive electrons). The quantum anomalous hall effect (QAHE) and fractional-QAHE are believed to exist in 2D-isolated Kagome layers with spin-orbit coupling, leading to promising applications in ultra-low energy electronics and quantum computing. Though high-quality thin Kagome metal films have been realised, such as >20nm FeSn and Mn3Sn, large-area ultra-thin films have yet to be reported. Here, we report the successful growth of high-quality epitaxial ultra-thin FeSn films (<10nm) via molecular beam epitaxy. Structural characterisation reveals the Kagome lattice, with the expected lattice constant and correct 1:1 stoichiometry by X-ray photo-emission spectroscopy (XPS). Angular resolved photo-emission spectroscopy (ARPES) measurements confirm the existence of Dirac bands at the K-points in the Brillouin Zone, where the extracted Fermi velocity of 1.3 × 105 ms- 1 is consistent with bulk FeSn measurements. The successful growth of ultra-thin Kagome metal films provides a pathway towards understanding the effect of quantum confinement on the electronic band structure, in particular, the opening of a bandgap in the Dirac bands and the realisation of novel quantum phenomena.en_AU
dc.identifier.booktitle46th Annual Condensed Matter and Materials Meeting, Charles Sturt University, Wagga Wagga, NSW, 6 to 9 February, 2024, Conference Handbooken_AU
dc.identifier.citationBlyth, J., Zhao, M., Sridhar, S., Causer, G., Fuhrer, M., Tadich, A., & Edmonds, M. (2024). Realisation of epitaxial ultra-thin Kagome metal FeSn films. Presentation to the 46th Annual Condensed Matter and Materials Meeting, Charles Sturt University, Wagga Wagga, NSW, 6 to 9 February, 2024. In 46th Annual Condensed Matter and Materials Meeting, Charles Sturt University, Wagga Wagga, NSW, 6 to 9 February, 2024, Conference Handbook (pp. 48). Parkville, Victoria : Australian Institute of Physics.en_AU
dc.identifier.conferenceenddate2024-02-09en_AU
dc.identifier.conferencename46th Annual Condensed Matter and Materials Meetingen_AU
dc.identifier.conferenceplaceWagga Wagga, NSWen_AU
dc.identifier.conferencestartdate2024-02-06en_AU
dc.identifier.pagination48en_AU
dc.identifier.placeofpublicationParkville, Victoriaen_AU
dc.identifier.urihttps://apo.ansto.gov.au/handle/10238/17131en_AU
dc.language.isoenen_AU
dc.publisherAustralian Institute of Physicsen_AU
dc.subjectBand theoryen_AU
dc.subjectBrillouin zonesen_AU
dc.subjectDirac Operatorsen_AU
dc.subjectElectronsen_AU
dc.subjectEpitaxyen_AU
dc.subjectHall effecten_AU
dc.subjectIronen_AU
dc.subjectMagnetic propertiesen_AU
dc.subjectMetalsen_AU
dc.subjectQuantum computersen_AU
dc.subjectThin Filmsen_AU
dc.titleRealisation of epitaxial ultra-thin Kagome metal FeSn filmsen_AU
dc.typeConference Abstracten_AU

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