Pseudo-spin-dependent scattering in carbon nanotubes
arXiv:1009.4839 · doi:10.1103/PhysRevB.84.115126
Abstract
The breaking of symmetry is the ground on which many physical phenomena are explained. This is important in particular for bipartite lattice structure as graphene and carbon nanotubes, where particle-hole and pseudo-spin are relevant symmetries. Here we investigate the role played by the defect-induced breaking of these symmetries in the electronic scattering properties of armchair single-walled carbon nanotubes. From Fourier transform of the local density of states we show that the active electron scattering channels depend on the conservation of the pseudo-spin. Further, we show that the lack of particle-hole symmetry is responsible for the pseudo-spin selection rules observed in several experiments. This symmetry breaking arises from the lattice reconstruction appearing at defect sites. Our analysis gives an intuitive way to understand the scattering properties of carbon nanotubes, and can be employed for newly interpret several experiments on this subject. Further, it can be used to design devices such as pseudo-spin filter by opportune defect engineering.
References in corpus (7)
- Graphene valley filter using a line defect
- Real Space Imaging of One-Dimensional Standing Waves: Direct Evidence for a Luttinger Liquid
- One-Dimensional Energy Dispersion of Single-Walled Carbon Nanotubes by Resonant Electron Scattering
- The low energy spectrum of finite size metallic SWNTs
- The spectrum of interacting metallic carbon nanotubes: Exchange effects and universality
- Electron Scattering in Intrananotube Quantum Dots
- Defect-induced multicomponent electron scattering in single-walled carbon nanotubes