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Driven polymer translocation through nanopores: slow versus fast dynamics

Abstract

We investigate the dynamics of polymer translocation through nanopores under external driving by 3D Langevin Dynamics simulations, focusing on the scaling of the average translocation time τ\tau versus the length of the polymer, τNα\tau\sim N^{\alpha}. For slow translocation, i.e., under low driving force and/or high friction, we find α1+ν1.588\alpha \approx 1+\nu \approx 1.588 where ν\nu denotes the Flory exponent. In contrast, α1.37\alpha\approx 1.37 is observed for fast translocation due to the highly deformed chain conformation on the trans side, reflecting a pronounced non-equilibrium situation. The dependence of the translocation time on the driving force is given by τF1\tau \sim F^{-1} and τF0.80\tau \sim F^{-0.80} for slow and fast translocation, respectively. These results clarify the controversy on the magnitude of the scaling exponent α\alpha for driven translocation.Comment: 6 pages, 7 figures, to appear in EPL (Europhysics Letters

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