Rectification of Vortex Motion in a Circular Ratchet Channel
N. S. Lin, T. W. Heitmann, K. Yu, B. L. T. Plourde, and V. R. Misko

TL;DR
This paper investigates how vortices move in an asymmetric circular channel under AC current, revealing how vortex density, frequency, and commensurability influence rectification and net flow, with experimental validation.
Contribution
It introduces a detailed analysis of vortex rectification regimes, including single-vortex and collective behaviors, and identifies fractional steps in vortex velocity related to vortex-cell ratios.
Findings
Vortex net flow depends on density and frequency.
Fractional and integer steps observed in vortex velocity curves.
Experimental evidence of asymmetric vortex response in a circular channel.
Abstract
We study the dynamics of vortices in an asymmetric ring channel driven by an external current I in a Corbino setup. The asymmetric potential can rectify the motion of vortices and cause a net flow without any unbiased external drive, which is called ratchet effect. With an applied ac current, the potential can rectify the motion of vortices in the channel and induce a dc net flow. We show that the net flow of vortices strongly depends on vortex density and frequency of the driving current. Depending on the density, we distinguish a "single-vortex" rectification regime (low density) determined by the potential-energy landscape inside each cell of the channel (i.e., "hard" and "easy" directions of motion) and "multi-vortex", or "collective", rectification (high density) when the interaction between vortices becomes important. The frequency of the driving ac current determines a possible…
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