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June 27, 2007Physical Review A126 citationsOpen Access

Periodically driven quantum ratchets: Symmetries and resonances

SDS. I. DenisovLML. Morales-MolinaSFSergej Flach

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Abstract

We study the quantum version of a tilting and flashing Hamiltonian ratchet, consisting of a periodic potential and a time-periodic driving field. The system dynamics is governed by a Floquet evolution matrix bearing the symmetry of the corresponding Hamiltonian. The dc-current appears due to the desymmetrization of Floquet eigenstates, which become transporting when all the relevant symmetries are violated. Those eigenstates that mostly contribute to a directed transport reside in phase space regions corresponding to classical resonances. Quantum dynamics leads to the dependence of the average velocity on the initial phase of the ac-field. A resonant enhancement (or suppression) of the dc-current, due to avoided crossings between different Floquet states, takes place upon tuning some control parameters. Our studies are predominantly aimed at experimental realizations of ac-driven quantum ratchets with cold atoms.

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Cite This Study

Denisov et al. (2007) studied this question.

synapsesocial.com/papers/6a2101967cbd4d969ff64433https://doi.org/10.1103/physreva.75.063424
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