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Observation of a topologically non-trivial surface state in half-Heusler PtLuSb (001) thin films

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arxiv 1511.04778 v3 pith:ZSDUHPP3 submitted 2015-11-15 cond-mat.mtrl-sci cond-mat.str-el

Observation of a topologically non-trivial surface state in half-Heusler PtLuSb (001) thin films

classification cond-mat.mtrl-sci cond-mat.str-el
keywords compoundshalf-heuslersurfacematerialscalculationsdevicesfilmsptlusb
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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The discovery of topological insulators (TIs), materials with bulk band gaps and protected cross-gap surface states, in compounds such as Bi2Se3 has generated much interest in identifying topological surface states (TSSs) in other classes of materials. In particular, recent theory calculations suggest that TSSs may be found in half-Heusler ternary compounds. If experimentally realizable, this would provide a materials platform for entirely new heterostructure spintronic devices that make use of the structurally-identical but electronically-varied nature of Heusler compounds. Here, we show the presence of a TSS in epitaxially grown thin films of the half-Heusler compound PtLuSb. Spin and angle-resolved photoemission spectroscopy (ARPES), complemented by theoretical calculations, reveals a surface state with linear dispersion and a helical tangential spin texture consistent with previous predictions. This experimental verification of TI behavior is a significant step forward in establishing half-Heusler compounds as a viable material system for future spintronics devices.

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