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Topological surface states in {\gamma}-PtBi$_2$ evidenced by scanning tunneling microscopy

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arxiv 2505.10808 v1 pith:ZB7EOJRZ submitted 2025-05-16 cond-mat.supr-con cond-mat.mes-hall

classification cond-mat.supr-concond-mat.mes-hall
keywords statessurfacetopologicalfermigammaptbi2arcsevidence
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For the application of topological materials, the specific location of their topological surface states with respect to the Fermi level are important. {\gamma}-PtBi2 has been demonstrated to be a Weyl semimetal possessing superconducting Fermi arcs by photoemission spectroscopy. However, the evidence of its topological surface states is lacking by scanning tunneling microscopy (STM), which should be rather sensitive to detect the surface states. Here, we show multiple STM evidences for the existence of topological surface states in {\gamma}-PtBi2. We observe not only the step-edge and screw dislocation induced quasiparticle interference fringes, originating from the electron scatterings between the Fermi arcs of {\gamma}-PtBi2, but also the back-scattering prohibition related to the spin-flip process, which is the direct evidence for the topological nature of the surface states. Moreover, we demonstrate that the topological surface states are precisely located over a narrow energy range near the Fermi level, within which sharply enhanced intensity and slow spatial decay of quasiparticle interference are observed.

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Cited by 2 Pith papers

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  1. Sizable superconducting gap and anisotropic chiral topological superconductivity in the Weyl semimetal PtBi$_2$

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    PtBi2 surfaces show a uniform >10 meV superconducting gap and ubiquitous in-gap Andreev bound states, interpreted as evidence for anisotropic chiral topological superconductivity.

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