Directed Transport of Atoms in a Hamiltonian Quantum Ratchet

Salger, T; Kling S.; Hecking T.; Geckeler, C; Morales-Molina, L; Weitz, M

Abstract

Classical ratchet potentials, which alternate a driving potential with periodic random dissipative motion, can account for the operation of biological motors. We demonstrate the operation of a quantum ratchet, which differs from classical ratchets in that dissipative processes are absent within the observation time of the system (Hamiltonian regime). An atomic rubidium Bose-Einstein condensate is exposed to a sawtooth-like optical lattice potential, whose amplitude is periodically modulated in time. The ratchet transport arises from broken spatiotemporal symmetries of the driven potential, resulting in a desymmetrization of transporting eigenstates (Floquet states). The full quantum character of the ratchet transport was demonstrated by the measured atomic current oscillating around a nonzero stationary value at longer observation times, resonances occurring at positions determined by the photon recoil, and dependence of the transport current on the initial phase of the driving potential. Copyright 2009 by the American Association for the Advancement of Science; all rights reserved.

Más información

Título según WOS: Directed Transport of Atoms in a Hamiltonian Quantum Ratchet
Título según SCOPUS: Directed transport of atoms in a hamiltonian quantum ratchet
Título de la Revista: SCIENCE
Volumen: 326
Número: 5957
Editorial: AMER ASSOC ADVANCEMENT SCIENCE
Fecha de publicación: 2009
Página de inicio: 1241
Página final: 1243
Idioma: English
URL: http://www.sciencemag.org/cgi/doi/10.1126/science.1179546
DOI:

10.1126/science.1179546

Notas: ISI, SCOPUS