High-pressure induced Weyl semimetal phase in 2D Tellurium
Abstract
Relativistic Weyl fermion quasiparticles in Weyl semimetal bring the electron’s chirality degree of freedom into the electrical transport and give rise to exotic phenomena. A topological phase transition from a topological trivial phase to a topological non-trivial phase offers a route to control electronic devices through its topological properties. Here, we report the Weyl semimetal phase in hydrothermally grown two-dimensional Tellurium (2D Te) induced by high hydrostatic pressure (up to 2.47 GPa). The unique chiral crystal structure gives rise to chiral fermions with different topological chiral charges ($${{C}}=-{{1}},+{{1}},{{and}}-{{2}}$$ C = − 1 , + 1 , a n d − 2 ). The highly tunable chemical potential in 2D Te provides comprehensive information for understanding the pressure-dependent electron band structure. The pressure-induced insulator-to-metal transition, two-carrier transport, and the non-trivial π Berry phase shift in quantum oscillations are observed in the 2D Te Weyl semimetal phase. Our work demonstrates the pressure-induced bandgap closing in the inversion asymmetric narrow bandgap semiconductor 2D Te.
Document Details
- Document Type
- Pub Defense Publication
- Publication Date
- Nov 28, 2023
- Source ID
- 10.1038/s42005-023-01460-1
Entities
People
- Chang Niu
- David Graf
- Mingyi Wang
- Peide Ye
- Seungjun Lee
- Tony Low
- Wenzhuo Wu
- Zhuocheng Zhang
Organizations
- Army Research Office
- National Science Foundation