Topological node-line semimetal in three-dimensional graphene networks
Abstract
Graphene, a two-dimensional (2D) carbon sheet, acquires many of its amazing properties from the Dirac point nature of its electronic structures with negligible spin-orbit coupling. Extending to 3D space, graphene networks with negative curvature, called Mackay-Terrones crystals (MTCs), have been proposed and experimentally explored, yet their topological properties have yet to be discovered. Based on the first-principle calculations, we report an all-carbon MTC with topologically nontrivial electronic states by exhibiting node lines in bulk. When the node lines are projected onto surfaces to form circles, "drumhead"-like flat surface bands nestled inside of the circles are formed. The bulk node line can evolve into a 3D Dirac point in the absence of inversion symmetry, the existence of which has been shown to be plausible in recent experiments.
- Publication:
-
Physical Review B
- Pub Date:
- July 2015
- DOI:
- arXiv:
- arXiv:1411.2175
- Bibcode:
- 2015PhRvB..92d5108W
- Keywords:
-
- 73.20.-r;
- 03.65.Vf;
- 71.20.-b;
- 73.43.-f;
- Electron states at surfaces and interfaces;
- Phases: geometric;
- dynamic or topological;
- Electron density of states and band structure of crystalline solids;
- Quantum Hall effects;
- Condensed Matter - Mesoscale and Nanoscale Physics;
- Condensed Matter - Materials Science
- E-Print:
- 19 pages, 7 figures. Figure 4 is updated