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One-Dimensional Spin-Polarised Surface States -- A Comparison of Bi(112) with Other Vicinal Bismuth Surfaces

Authors :
Åsland, Anna Cecilie
Bakkelund, Johannes
Thingstad, Even
Røst, Håkon I.
Cooil, Simon P.
Hu, Jinbang
Vobornik, Ivana
Fujii, Jun
Sudbø, Asle
Wells, Justin W.
Mazzola, Federico
Publication Year :
2022

Abstract

Vicinal surfaces of bismuth are unique test-beds for investigating one-dimensional (1D) spin-polarised surface states that may one day be used in spintronic devices. In this work, two such states have been observed for the (112) surface when measured using angle-resolved photoemission spectroscopy (ARPES) and spin-resolved ARPES, and when calculated using a tight-binding (TB) model and with density functional theory (DFT). The surface states appear as elongated Dirac-cones which are 1D and almost dispersionless in the ${k}_{\text{y}}$-direction, but disperse with energy in the orthogonal ${k}_{\text{x}}$-direction to form two ``$\times$''-like features centered at the ${k}_{\text{y}}$-line through ${\Gamma}$. Unlike many materials considered for spintronic applications, their 1D nature suggests that conductivity and spin-transport properties are highly dependent on direction. The spin-polarisation of the surface states is mainly in-plane and parallel to the 1D state, but there are signs of a tilted out-of-plane spin-component for one of them. The Bi(112) surface states resemble those found for other vicinal surfaces of bismuth, strongly indicating that their existence and general properties are robust properties of vicinal surfaces of bismuth. Furthermore, differences in the details of the states, particularly related to their spin-polarisation, suggest that spin-transport properties may be engineered simply by precise cutting and polishing of the crystal.<br />Comment: 8 pages, 4 figures + supplemental material. To be submitted to PRB

Details

Database :
arXiv
Publication Type :
Report
Accession number :
edsarx.2210.10809
Document Type :
Working Paper
Full Text :
https://doi.org/10.1103/PhysRevB.108.205403