Chiral Charge Density Wave and Backscattering-Immune Orbital Texture in Monolayer 1 T -TiTe 2 .
Mingqiang RenFangjun ChengYufei ZhaoMingqiang GuQiangjun ChengBinghai YanQihang LiuXucun MaQikun XueCan-Li SongPublished in: Nano letters (2023)
Nontrivial electronic states are attracting intense attention in low-dimensional physics. Though chirality has been identified in charge states with a scalar order parameter, its intertwining with charge density waves (CDW), film thickness, and the impact on the electronic behaviors remain less well understood. Here, using scanning tunneling microscopy, we report a 2 × 2 chiral CDW as well as a strong suppression of the Te-5 p hole-band backscattering in monolayer 1 T -TiTe 2 . These exotic characters vanish in bilayer TiTe 2 in a non-CDW state. Theoretical calculations prove that chirality comes from a helical stacking of the triple- q CDW components and, therefore, can persist at the two-dimensional limit. Furthermore, the chirality renders the Te-5 p bands with an unconventional orbital texture that prohibits electron backscattering. Our study establishes TiTe 2 as a promising playground for manipulating the chiral ground states at the monolayer limit and provides a novel path to engineer electronic properties from an orbital degree.
Keyphrases
- solar cells
- capillary electrophoresis
- high resolution
- ionic liquid
- optical coherence tomography
- working memory
- electron microscopy
- mass spectrometry
- density functional theory
- high throughput
- room temperature
- molecular dynamics
- molecular dynamics simulations
- magnetic resonance
- computed tomography
- reduced graphene oxide
- label free
- gold nanoparticles