Two-dimensional quantum spin Hall insulators based on atomic monolayers offer a promising route toward dissipationless electronics, yet their practical use is often limited by environmental instability. Encapsulating the system with a graphene capping layer has been shown to be a reliable method to prevent oxidation and degradation. However, the confirmation of a successful encapsulation still relies on ultra-high vacuum techniques, that considerably slow the process. Here, we present an ex situ, rapid, nondestructive and spatially resolved Raman characterization of graphene-capped bismuthene, a honeycomb monolayer of Bi on SiC. A pronounced Raman scattering peak at around 122 cm-1 is identified as the E2g phonon of bismuthene, via a comparison with density functional perturbation theory calculations. We use excitation-energy and polarization-dependent Raman measurements to enable an unambiguous assignment of the spectral features. Tuning the excitation energy close to the excitonic transition in pristine bismuthene, we observe a strong enhancement of the Raman response and the emergence of additional scattering peaks. In this regime, higher-order phonon features, as well as interfacial modes between bismuthene and the SiC substrate, become visible, suggesting the involvement of resonant scattering processes. Our results establish Raman micro-spectroscopy as a versatile tool for probing graphene-protected quantum materials, providing access to lattice dynamics and interlayer coupling.

Resonantly-enhanced Raman response in graphene-capped bismuthene on SiC / Gehrig, L., Schmitt, C., Fragomeni, E., Sotgiu, S., Enzner, S., Venanzi, T., Liu, B., Strauß, K., Erhardt, J., Kamp, M., Stellino, E., Postorino, P., Schäfer, J., Moser, S., Stampfer, C., Sangiovanni, G., Claessen, R., Baldassarre, L.. - (2026).

Resonantly-enhanced Raman response in graphene-capped bismuthene on SiC

Erica Fragomeni;Simone Sotgiu;Tommaso Venanzi;Elena Stellino;Paolo Postorino;Giorgio Sangiovanni;Leonetta Baldassarre
2026

Abstract

Two-dimensional quantum spin Hall insulators based on atomic monolayers offer a promising route toward dissipationless electronics, yet their practical use is often limited by environmental instability. Encapsulating the system with a graphene capping layer has been shown to be a reliable method to prevent oxidation and degradation. However, the confirmation of a successful encapsulation still relies on ultra-high vacuum techniques, that considerably slow the process. Here, we present an ex situ, rapid, nondestructive and spatially resolved Raman characterization of graphene-capped bismuthene, a honeycomb monolayer of Bi on SiC. A pronounced Raman scattering peak at around 122 cm-1 is identified as the E2g phonon of bismuthene, via a comparison with density functional perturbation theory calculations. We use excitation-energy and polarization-dependent Raman measurements to enable an unambiguous assignment of the spectral features. Tuning the excitation energy close to the excitonic transition in pristine bismuthene, we observe a strong enhancement of the Raman response and the emergence of additional scattering peaks. In this regime, higher-order phonon features, as well as interfacial modes between bismuthene and the SiC substrate, become visible, suggesting the involvement of resonant scattering processes. Our results establish Raman micro-spectroscopy as a versatile tool for probing graphene-protected quantum materials, providing access to lattice dynamics and interlayer coupling.
2026
Physics - Materials Science; Physics - Materials Science; Physics - Mesoscopic Systems and Quantum Hall Effect
01 Pubblicazione su rivista::01a Articolo in rivista
Resonantly-enhanced Raman response in graphene-capped bismuthene on SiC / Gehrig, L., Schmitt, C., Fragomeni, E., Sotgiu, S., Enzner, S., Venanzi, T., Liu, B., Strauß, K., Erhardt, J., Kamp, M., Stellino, E., Postorino, P., Schäfer, J., Moser, S., Stampfer, C., Sangiovanni, G., Claessen, R., Baldassarre, L.. - (2026).
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11573/1776800
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