Driven Ratchets for Cold Atoms
arXiv:1112.0851 · doi:10.1016/S1049-250X(09)57001-2
Abstract
Brownian motors, or ratchets, are devices which "rectify" Brownian motion, i.e. they can generate a current of particles out of unbiased fluctuations. The ratchet effect is a very general phenomenon which applies to a wide range of physical systems, and indeed ratchets have been realized with a variety of solid state devices, with optical trap setups as well as with synthetic molecules and granular gases. The present article reviews recent experimental realizations of ac driven ratchets with cold atoms in driven optical lattices. This is quite an unusual system for a Brownian motor as there is no a real thermal bath, and both the periodic potential for the atoms and the fluctuations are determined by laser fields. Such a system allowed us to realize experimentally rocking and gating ratchets, and to precisely investigate the relationship between symmetry and transport in these ratchets, both for the case of periodic and quasiperiodic driving.
arXiv admin note: text overlap with arXiv:cond-mat/0610262 and arXiv:cond-mat/0512550
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Cited by in corpus (13)
- Tunable transport with broken space-time symmetries
- Coexistence of absolute negative mobility and anomalous diffusion
- Vibrational mechanics in an optical lattice: controlling transport via potential renormalization
- Current reversals in a rocking ratchet: dynamical vs symmetry-breaking mechanisms
- Current reversals in a rocking ratchet: the frequency domain
- Efficiency of transport in periodic potentials: dichotomous noise contra deterministic force
- Nonlinear, Nonequilibrium and Collective Dynamics in a Periodically Modulated Cold Atom System
- Interaction Induced Directed Transport in AC-Driven Periodic Potentials
- Dynamics stabilization and transport coherency in a rocking ratchet for cold atoms
- Temperature anomalies of oscillating diffusion in ac-driven periodic systems
- Fluctuation-induced drift in a gravitationally tilted optical lattice
- Multiple current reversals using superimposed driven lattices
- Controlling transport of underdamped particles in two-dimensional driven Bravais lattices