Litcius/Paper detail

Unconventional Charge-Density-Wave Gap in Monolayer NbS<sub>2</sub>

Timo Knispel, Jan Berges, Arne Schobert, Erik G. C. P. van Loon, Wouter Jolie, Tim O. Wehling, Thomas Michely, J. Fischer

2024Nano Letters25 citationsDOIOpen Access PDF

Abstract

High Resolution Image Download MS PowerPoint Slide Using scanning tunneling microscopy and spectroscopy, for a monolayer of transition metal dichalcogenide H-NbS 2 grown by molecular beam epitaxy on graphene, we provide unambiguous evidence for a charge density wave (CDW) with a 3 × 3 superstructure, which is not present in bulk NbS 2 . Local spectroscopy displays a pronounced gap on the order of 20 meV at the Fermi level. Within the gap, low-energy features are present. The gap structure with its low-energy features is at variance with the expectation for a gap opening in the electronic band structure due to a CDW. Instead, comparison with ab initio calculations indicates that the observed gap structure must be attributed to combined electron–phonon quasiparticles. The phonons in question are the elusive amplitude and phase collective modes of the CDW transition. Our findings advance the understanding of CDW mechanisms in 2D materials and their spectroscopic signatures.

Topics & Concepts

Condensed matter physicsScanning tunneling microscopeCharge density waveSuperstructureQuasiparticleBand gapPhononMonolayerScanning tunneling spectroscopyFermi levelElectronic structureMaterials scienceSuperlatticeSpectroscopyElectronPhysicsNanotechnologyThermodynamicsSuperconductivityQuantum mechanics2D Materials and ApplicationsGraphene research and applicationsTopological Materials and Phenomena