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arXiv · 2210.10870

Geometry-induced spin-filtering in photoemission maps from WTe$_2$ surface states

Abstract

We demonstrate that an important quantum material WTe$_2$ exhibits a new type of geometry-induced spin-filtering effect in photoemission, stemming from low symmetry that is responsible for its exotic transport properties. Through the laser-driven spin-polarized angle-resolved photoemission Fermi surface mapping, we showcase highly asymmetric spin textures of electrons photoemitted from the surface states of WTe$_2$. Such asymmetries are not present in the initial state spin textures, which are bound by the time-reversal and crystal lattice mirror plane symmetries. The findings are reproduced qualitatively by theoretical modeling within the one-step model photoemission formalism. The effect could be understood within the free-electron final state model as an interference due to emission from different atomic sites. The observed effect is a manifestation of time-reversal symmetry breaking of the initial state in the photoemission process, and as such it cannot be eliminated, but only its magnitude influenced, by special experimental geometries.

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BibTeXRIS

Tristan Heider, Gustav Bihlmayer, Jakub Schusser, Friedrich Reinert, Jan Minár, Stefan Blügel, Claus M. Schneider, Lukasz Plucinski. 2022-10-19. Geometry-induced spin-filtering in photoemission maps from WTe$_2$ surface states. https://doi.org/10.1103/physrevlett.130.146401

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