Symmetry-enforced nodal lines in the band structures of vacancy-engineered graphene
arXiv:2109.12468 · doi:10.1103/PhysRevB.105.155414
Abstract
We elaborate that single-layer graphene with periodic vacancies can have a band structure containing nodal lines or nodal loops, opening the possibility of graphene-based electronic or spintronic devices with novel functionalities. The principle is that by removing carbon atoms such that the lattice becomes nonsymmorphic, every two sublattices in the unit cell will map to each other under glide plane operation. This mapping yields degenerate eigenvalues for the glide plane operation, which guarantees that the energy bands must stick together pairwise at a boundary of the Brillouin zone. Moving away from the Brillouin zone boundary causes the symmetry-enforced nodal lines to split, resulting in accidental nodal lines caused by the crossings of the split bands. Moreover, the density of states at the Fermi level may be dramatically enhanced if the nodal lines crosses the Fermi level. The nodal lines occur a variety of vacancy configurations even in the presence of Rashba spin-orbit coupling. Finally, our theory also explains the nodal loops surrounding the entire Brillouin zone of a chevron-type nanoporous graphene fabricated in a recent experiment.
8 pages, 5 figures
References in corpus (10)
- Quantum ESPRESSO: a modular and open-source software project for quantum simulations of materials
- The electronic properties of graphene
- Topological response in Weyl semimetals and the chiral anomaly
- Tunable room-temperature spin galvanic and spin Hall effects in van der Waals heterostructures
- Tunable spin-orbit coupling and symmetry-protected edge states in graphene/WS
- Strong electron-hole symmetric Rashba spin-orbit coupling in graphene/monolayer transition metal dichalcogenide heterostructures
- Optimal charge-to-spin conversion in graphene on transition metal dichalcogenides
- Magnetic semimetals and quantized anomalous Hall effect in EuB6
- Vacancy-Engineered Flat-Band Superconductivity in Holey Graphene
- Less is more: Vacancy-engineered nodal-line semimetals
Cited by in corpus (4)
- Topological phase diagram of the Haldane model on a Bishamon-kikko--honeycomb lattice
- Topological Majorana flat bands in the Kitaev model on a Bishamon-kikko lattice
- Electronic interactions in a vacancy-engineered honeycomb lattice: Transition from a nodal-line semimetal to a magnetic insulator
- Topological transition induced by selective random defects on a honeycomb lattice