Rotational levels in quantum dots
arXiv:cond-mat/9911323 · doi:10.1209/epl/i2000-00138-7
Abstract
Low energy spectra of isotropic quantum dots are calculated in the regime of low electron densities where Coulomb interaction causes strong correlations. The earlier developed pocket state method is generalized to allow for continuous rotations. Detailed predictions are made for dots of shallow confinements and small particle numbers, including the occurance of spin blockades in transport.
RevTeX, 10 pages, 2 figures
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Cited by in corpus (7)
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- Two ground-state modifications of quantum-dot beryllium
- Impurity effects in few-electron quantum dots: Incipient Wigner molecule regime
- Spin and rotational symmetries in unrestricted Hartree Fock states of quantum dots
- Spin conversion rates due to dipolar interactions in mono-isotopic quantum dots at vanishing spin-orbit coupling