Electronic structure of molecular beam epitaxy grown 1T-MoTe film and strain effect
arXiv:1909.11309 · doi:10.1088/1674-1056/ab43ba
Abstract
Atomically thin transition metal dichalcogenide films with distorted trigonal (1T) phase have been predicted to be candidates for realizing quantum spin Hall effect. Growth of 1T film and experimental investigation of its electronic structure are critical. Here we report the electronic structure of 1T-MoTe films grown by molecular beam epitaxy (MBE). Growth of the 1T-MoTe film depends critically on the substrate temperature, and successful growth of the film is indicated by streaky stripes in the reflection high energy electron diffraction and sharp diffraction spots in low energy electron diffraction. Angle-resolved photoemission spectroscopy measurements reveal a metallic behavior in the as-grown film with an overlap between the conduction and valence bands. First principles calculation suggests that a suitable tensile strain along the a-axis direction is needed to induce a gap to make it an insulator. Our work not only reports the electronic structure of MBE grown 1T-MoTe films, but also provides insights for strain engineering to make it possible for quantum spin Hall effect.
13 pages,5 figures
References in corpus (7)
- Quantum Spin Hall Effect and Topological Phase Transition in HgTe Quantum Wells
- Quantum Spin Hall Insulator State in HgTe Quantum Wells
- Quantum Spin Hall Effect and Topological Field Effect Transistor in Two-Dimensional Transition Metal Dichalcogenides
- Observation of the Quantum Spin Hall Effect up to 100 Kelvin in a Monolayer Crystal
- Quantum Spin Hall Effect in Inverted Type II Semiconductors
- Elastic and electronic tuning of magnetoresistance in MoTe
- Topological phase in non-centrosymmetric material NaSnBi