Two-electron n-p double quantum dots in carbon nanotubes
arXiv:1412.0463 · doi:10.1103/PhysRevB.91.085312
Abstract
We consider electron states in n-p double quantum dots defined in a semiconducting carbon nanotube (CNT) by an external potential. We describe formation of extended single-electron orbitals originating from the conduction and valence bands confined in a minimum and a maximum of the external potential, respectively. We solve the problem of a confined electron pair using an exact diagonalization method within the tight-binding approach, which allows for a straightforward treatment of the conduction and valence band states, keeping an exact account for the intervalley scattering mediated by the atomic defects and the electron-electron interaction. The exchange interaction - which in the unipolar double dots is nearly independent of the axial magnetic field (B) and forms singlet-like and triplet-like states - in the n-p system appears only for selected states and narrow intervals of B. In particular the ground-state energy level of a n-p double dot is not split by the exchange interaction and remains four-fold degenerate at zero magnetic field also for a strong tunnel coupling between the dots.
References in corpus (15)
- The electronic properties of graphene
- Andreev reflection and Klein tunneling in graphene
- Spin-orbit coupling in curved graphene, fullerenes, nanotubes, and nanotube caps
- Selective transmission of Dirac electrons and ballistic magnetoresistance of \textit{n-p} junctions in graphene
- Coupling of Spin and Orbital Motion of Electrons in Carbon Nanotubes
- Spin-orbit interaction and anomalous spin relaxation in carbon nanotube quantum dots
- Large spin-orbit coupling in carbon nanotubes
- Tunable few-electron double quantum dots and Klein tunnelling in ultra-clean carbon nanotubes
- Valley-spin blockade and spin resonance in carbon nanotubes
- Bends In Nanotubes Allow Electric Spin Control and Coupling
- Coulomb versus spin-orbit interaction in few-electron carbon-nanotube quantum dots
- Few-electron physics in a nanotube quantum dot with spin-orbit coupling
- The low energy spectrum of finite size metallic SWNTs
- The spectrum of interacting metallic carbon nanotubes: Exchange effects and universality
- Electrically driven spin resonance in a bent disordered carbon nanotube