Adiabatic quantum state transfer in tight-binding chains using periodic driving fields
arXiv:1408.1939 · doi:10.1209/0295-5075/107/50003
Abstract
A method for high-fidelity coherent adiabatic transport in a zig-zag tight-binding chain, based on application of two external periodic driving fields, is theoretically proposed. The method turns out to be robust against imperfections and disorder of the static lattice Hamiltonian, is tolerant to next-nearest neighborhood interactions, and enables coherent transport in long chains without the need for a local control and timing of the trapping potential.
6 pages, 4 figures, to appeer in EuroPhysics Letters
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