Spin filtering through excited states in double quantum dot pumps
arXiv:cond-mat/0606362 · doi:10.1103/PhysRevB.74.035326
Abstract
Recently it has been shown that ac-driven double quantum dots can act as spin pumps and spin filters. By calculating the current through the system for each spin polarization, by means of the time evolution of the reduced density matrix in the sequential tunneling regime (Born-Markov approximation), we demonstrate that the spin polarization of the current can be controlled by tuning the parameters (amplitude and frequency) of the ac field. Importantly, the pumped current as a function of the applied frequency presents a series of peaks which are uniquely associated with a definite spin polarization. We discuss how excited states participating in the current allow the system to behave as a bipolar spin filter by tuning the ac frequency and intensity. We also discuss spin relaxation and decoherence effects in the pumped current and show that measuring the width of the current vs frequency peaks allows to determine the spin decoherence time .
10 pages. 5 figures
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Cited by in corpus (10)
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- Photon assisted long-range tunneling
- Spin correlations in spin blockade
- Electron bunching in triple quantum dot interferometers
- Shot noise in a quantum dot coupled to non-magnetic leads: Effects of Coulomb interaction
- Revealing the internal spin dynamics in a double quantum dot by periodic voltage modulation