Backscattering in Topological Edge States Despite Time-Reversal Symmetry

Fuente: arXiv
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Main Authors: Erhardt, Jonas, Iannetti, Mattia, Dominguez, Fernando, Hankiewicz, Ewelina M., Trauzettel, Björn, Profeta, Gianni, Di Sante, Domenico, Sangiovanni, Giorgio, Moser, Simon, Claessen, Ralph
Format: Preprint
Published: 2025
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author Erhardt, Jonas
Iannetti, Mattia
Dominguez, Fernando
Hankiewicz, Ewelina M.
Trauzettel, Björn
Profeta, Gianni
Di Sante, Domenico
Sangiovanni, Giorgio
Moser, Simon
Claessen, Ralph
author_facet Erhardt, Jonas
Iannetti, Mattia
Dominguez, Fernando
Hankiewicz, Ewelina M.
Trauzettel, Björn
Profeta, Gianni
Di Sante, Domenico
Sangiovanni, Giorgio
Moser, Simon
Claessen, Ralph
contents Spin-momentum-locked edge states of quantum spin Hall insulators (QSHIs) provide a compelling platform for spintronic applications, owing to their intrinsic protection against backscattering from non-magnetic disorder. This protection emerges from time-reversal symmetry, which pairs Kramers partners of helical edge modes with opposite spin and momentum, thereby strictly forbidding elastic single-particle backscattering within the pair. Yet, contrary to the idealized notion of linear edge bands, the non-monotonic dispersions of realistic materials can host multiple Kramers pairs, reintroducing backscattering channels between them without violating time-reversal symmetry. Here, we investigate inter-Kramers pair backscattering in the non-linear edge bands of the QSHI indenene, highlighting a critical aspect of edge-state stability. Using quasiparticle interference in scanning tunneling spectroscopy -- a direct probe of backscattering -- we observe pairwise coupling between energy-degenerate Kramers pairs, while energy regions with only a single Kramers pair remain strictly protected. Supported by theoretical analysis, our findings provide an unprecedented experimental demonstration of edge state backscattering fully consistent with their underlying topological protection. This insight has profound implications for numerous QSHI candidates, emphasizing that the mere presence of gap-traversing edge modes does not inherently guarantee their protection against backscattering.
format Preprint
id arxiv_https___arxiv_org_abs_2503_11497
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Backscattering in Topological Edge States Despite Time-Reversal Symmetry
Erhardt, Jonas
Iannetti, Mattia
Dominguez, Fernando
Hankiewicz, Ewelina M.
Trauzettel, Björn
Profeta, Gianni
Di Sante, Domenico
Sangiovanni, Giorgio
Moser, Simon
Claessen, Ralph
Mesoscale and Nanoscale Physics
Materials Science
Spin-momentum-locked edge states of quantum spin Hall insulators (QSHIs) provide a compelling platform for spintronic applications, owing to their intrinsic protection against backscattering from non-magnetic disorder. This protection emerges from time-reversal symmetry, which pairs Kramers partners of helical edge modes with opposite spin and momentum, thereby strictly forbidding elastic single-particle backscattering within the pair. Yet, contrary to the idealized notion of linear edge bands, the non-monotonic dispersions of realistic materials can host multiple Kramers pairs, reintroducing backscattering channels between them without violating time-reversal symmetry. Here, we investigate inter-Kramers pair backscattering in the non-linear edge bands of the QSHI indenene, highlighting a critical aspect of edge-state stability. Using quasiparticle interference in scanning tunneling spectroscopy -- a direct probe of backscattering -- we observe pairwise coupling between energy-degenerate Kramers pairs, while energy regions with only a single Kramers pair remain strictly protected. Supported by theoretical analysis, our findings provide an unprecedented experimental demonstration of edge state backscattering fully consistent with their underlying topological protection. This insight has profound implications for numerous QSHI candidates, emphasizing that the mere presence of gap-traversing edge modes does not inherently guarantee their protection against backscattering.
title Backscattering in Topological Edge States Despite Time-Reversal Symmetry
topic Mesoscale and Nanoscale Physics
Materials Science
url https://arxiv.org/abs/2503.11497