Spin entangled two-particle dark state in quantum transport through coupled quantum dots
arXiv:1209.0992 · doi:10.1103/PhysRevB.87.045416
Abstract
We present a transport setup of coupled quantum dots that enables the creation of spatially separated spin-entangled two-electron dark states. We prove the existence of an entangled transport dark state by investigating the system Hamiltonian without coupling to the electronic reservoirs. In the transport regime the entangled dark state which corresponds to a singlet has a strongly enhanced Fano factor compared to the dark state which corresponds to a mixture of the triplet states. Furthermore we calculate the concurrence of the occupying electrons to show the degree of entanglement in the transport regime.
9 pages and 3 figures
References in corpus (7)
- All-electronic coherent population trapping in quantum dots
- Dark states in the magnetotransport through triple quantum dots
- Two-Particle Dark State in the Transport through a Triple Quantum Dot
- Counting statistics of coherent population trapping in quantum dots
- Phonon-mediated decoherence in triple quantum dot interferometers
- Electron bunching in triple quantum dot interferometers
- Avoiding dark states in open quantum systems by tailored initial correlations