Time-shift invariance determines the functional shape of the current in dissipative rocking ratchets
Jos\'e A. Cuesta, Niurka R. Quintero, Renato Alvarez-Nodarse

TL;DR
This paper develops a universal theory for rocking ratchets based on time-shift invariance, explaining their current behavior across various systems and predicting new phenomena.
Contribution
It introduces a general functional analysis framework that constrains the current in rocking ratchets, applicable to diverse physical systems and conditions.
Findings
Provides a universal expression for ratchet current based on time-shift invariance.
Explains deviations from universality observed in experiments.
Predicts new phenomena in rocking ratchets.
Abstract
Ratchets are devices able to rectify an otherwise oscillatory behavior by exploiting an asymmetry of the system. In rocking ratchets the asymmetry is induced through a proper choice of external forces and modulations of nonlinear symmetric potentials. The ratchet currents thus obtained in systems as different as semiconductors, Josephson junctions, optical lattices, or ferrofluids, show a set of universal features. A satisfactory explanation for them has challenged theorist for decades, and so far we still lack a general theory of this phenomenon. Here we provide such a theory by exploring ---through functional analysis--- the constraints that the simple assumption of time-shift invariance of the ratchet current imposes on its dependence on the external drivings. Because the derivation is based on so general a principle, the resulting expression is valid irrespective of the details and…
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