We demonstrate that the combined effect of a spatially periodic potential, lateral confinement, and spin-orbit interaction gives rise to a quantum ratchet mechanism for spin-polarized currents in two-dimensional coherent conductors. Upon adiabatic ac driving, in the absence of a net static bias, the system generates a directed spin current while the total charge current is zero. We analyze the underlying mechanism by employing symmetry properties of the scattering matrix and numerically verify the effect for different setups of ballistic conductors. The spin current direction can be changed upon tuning the Fermi energy or the strength of the Rashba spin-orbit coupling
We investigate directed motion in nonadiabatically rocked ratchet systems sustaining few bands below...
Particles in a ratchet, that is, a potential without spatial inversion symmetry, can move in one di...
We propose three different mechanisms for pumping spin-polarized currents in a ballistic circuit us...
We demonstrate that the combined effect of a spatially periodic potential, lateral confinement, and ...
The concept of ratchets, driven asymmetric periodic structures giving rise to directed particle flow...
Ratchet is a device that produces direct current of particles when driven by an unbiased force. We d...
We investigate the existence of the pure spin ratchet effect in a dissipative quasi-one-dimensional ...
We investigate the possiblity of creating directed spin-polarized currents in a two-dimensional elec...
We outline a generic ratchet mechanism for creating directed spin-polarized currents in ac-driven do...
We consider the possibility to employ a quantum wire realized in a two-dimensional electron gas (2DE...
We demonstrate that the tunnel oscillations of a biased double quantum dot can be employed as drivin...
We experimentally investigate the phenomenon of a quantum ratchet created by exposing a Bose-Einstei...
We predict the possibility to generate a finite stationary spin current by applying an unbiased ac d...
Traditionally the charge ratchet effect is considered as a consequence of either the spatial symmetr...
A periodically driven system with spatial asymmetry can exhibit a directed motion facilitated by the...
We investigate directed motion in nonadiabatically rocked ratchet systems sustaining few bands below...
Particles in a ratchet, that is, a potential without spatial inversion symmetry, can move in one di...
We propose three different mechanisms for pumping spin-polarized currents in a ballistic circuit us...
We demonstrate that the combined effect of a spatially periodic potential, lateral confinement, and ...
The concept of ratchets, driven asymmetric periodic structures giving rise to directed particle flow...
Ratchet is a device that produces direct current of particles when driven by an unbiased force. We d...
We investigate the existence of the pure spin ratchet effect in a dissipative quasi-one-dimensional ...
We investigate the possiblity of creating directed spin-polarized currents in a two-dimensional elec...
We outline a generic ratchet mechanism for creating directed spin-polarized currents in ac-driven do...
We consider the possibility to employ a quantum wire realized in a two-dimensional electron gas (2DE...
We demonstrate that the tunnel oscillations of a biased double quantum dot can be employed as drivin...
We experimentally investigate the phenomenon of a quantum ratchet created by exposing a Bose-Einstei...
We predict the possibility to generate a finite stationary spin current by applying an unbiased ac d...
Traditionally the charge ratchet effect is considered as a consequence of either the spatial symmetr...
A periodically driven system with spatial asymmetry can exhibit a directed motion facilitated by the...
We investigate directed motion in nonadiabatically rocked ratchet systems sustaining few bands below...
Particles in a ratchet, that is, a potential without spatial inversion symmetry, can move in one di...
We propose three different mechanisms for pumping spin-polarized currents in a ballistic circuit us...