Publication | Open Access
Dirac Cone with Helical Spin Polarization in Ultrathin<mml:math xmlns:mml="http://www.w3.org/1998/Math/MathML" display="inline"><mml:mi>α</mml:mi></mml:math>-Sn(001) Films
111
Citations
25
References
2013
Year
EngineeringTopological MaterialsSpin-charge ConversionDirac ConeSpin SystemsMagnetic ResonanceSpintronic MaterialSpin DynamicSpin PhenomenonUltrathin FilmsBand GapSemiconductorsMath XmlnsOptical PropertiesQuantum MaterialsMagnetic Topological InsulatorMagnetic Thin FilmsMaterials SciencePhysicsTopological MaterialHelical Spin PolarizationQuantum MagnetismSpintronicsBulk Topological InsulatorNatural SciencesTopological InsulatorApplied PhysicsCondensed Matter PhysicsThin FilmsTopological Heterostructures
Spin-split two-dimensional electronic states have been observed on ultrathin Sn(001) films grown on InSb(001) substrates. Angle-resolved photoelectron spectroscopy (ARPES) performed on these films revealed Dirac-cone-like linear dispersion around the Γ¯ point of the surface Brillouin zone, suggesting nearly massless electrons belonging to 2D surface states. The states disperse across a band gap between bulklike quantum well states in the films. Moreover, both circular dichroism of ARPES and spin-resolved ARPES studies show helical spin polarization of the Dirac-cone-like surface states, suggesting a topologically protected character as in a bulk topological insulator (TI). These results indicate that a quasi-3D TI phase can be realized in ultrathin films of zero-gap semiconductors.
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