Origin of the Electron-Phonon Interaction of Topological Semimetal Surfaces Measured with Helium Atom Scattering
arXiv:2001.11795 · doi:10.1021/acs.jpclett.9b03829
Abstract
He atom scattering has been demonstrated to be a sensitive probe of the electron-phonon interaction parameter at metal and metal-overlayer surfaces. Here it is shown that the theory linking to the thermal attenuation of atom scattering spectra (the Debye-Waller factor), can be applied to topological semimetal surfaces, like the quasi-one dimensional charge-density-wave system Bi(114) and the layered pnictogen chalcogenides.
References in corpus (8)
- Highly crystalline 2D superconductors
- Coexistence of the topological state and a two-dimensional electron gas on the surface of Bi2Se3
- Growth of High-Mobility Bi2Te2Se Nanoplatelets on hBN Sheets by van der Waals Epitaxy
- Bulk Band Structure of BiTe
- Cahn-Hilliard Equations and Phase Transition Dynamics for Binary Systems
- Electron-Phonon Coupling Constant of Metallic Overlayers from Specular He-Atom Scattering
- Ab initio lattice dynamics and electron-phonon coupling of Bi(111)
- Nanoscale Determination of the Mass Enhancement Factor in the Lightly-Doped Bulk Insulator Lead Selenide