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首页> 外文期刊>The Journal of Chemical Physics >Langevin dynamics simulations of polymer translocation through nanopores
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Langevin dynamics simulations of polymer translocation through nanopores

机译:Langevin动力学模拟的聚合物通过纳米孔易位

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We investigate the dynamics of polymer translocation through a nanopore using two-dimensional Langevin dynamics simulations. In the absence of an external driving force, we consider a polymer which is initially placed in the middle of the pore and study the escape time tau(e) required for the polymer to completely exit the pore on either side. The distribution of the escape times is wide and has a long tail. We find that tau(e) scales with the chain length N as tau(e)similar to N1+2 nu, where nu is the Flory exponent. For driven translocation, we concentrate on the influence of the friction coefficient xi, the driving force E, and the length of the chain N on the translocation time tau, which is defined as the time duration between the first monomer entering the pore and the last monomer leaving the pore. For strong driving forces, the distribution of translocation times is symmetric and narrow without a long tail and tau similar to E-1. The influence of xi depends on the ratio between the driving and frictional forces. For intermediate xi, we find a crossover scaling for tau with N from tau similar to N-2 nu for relatively short chains to tau similar to N1+nu for longer chains. However, for higher xi, only tau similar to N1+nu is observed even for short chains, and there is no crossover behavior. This result can be explained by the fact that increasing xi increases the Rouse relaxation time of the chain, in which case even relatively short chains have no time to relax during translocation. Our results are in good agreement with previous simulations based on the fluctuating bond lattice model of polymers at intermediate friction values, but reveal additional features of dependency on friction. (c) 2006 American Institute of Physics.
机译:我们使用二维Langevin动力学模拟研究通过纳米孔的聚合物移位的动力学。在没有外部驱动力的情况下,我们考虑一种最初放置在孔隙中间的聚合物,并研究聚合物完全从任一侧离开孔隙所需的逸出时间tau(e)。逃生时间的分布范围广,尾巴较长。我们发现tau(e)与N1 + 2 nu相似,链长为N的tau(e)缩放,其中nu是Flory指数。对于驱动移位,我们集中于摩擦系数xi,驱动力E和链长N对移位时间tau的影响,tau定义为第一个单体进入孔与最后一个进入孔之间的持续时间单体离开孔。对于强大的驱动力,移位时间的分布是对称且狭窄的,没有长尾巴和tau类似于E-1。 xi的影响取决于驱动力与摩擦力之比。对于中间xi,我们发现tau与N的交叉标度从相对于较短链的tau类似于N-2 nu到对于较长链的tau类似于N1 + nu。但是,对于较高的xi,即使对于短链,也仅观察到类似于N1 + nu的tau,并且没有交叉行为。该结果可以通过以下事实来解释,即增大xi会增加链的Rouse松弛时间,在这种情况下,即使相对较短的链也没有时间在移位过程中松弛。我们的结果与以前的基于中间摩擦值下聚合物的波动键晶格模型的模拟结果非常吻合,但揭示了依赖摩擦的其他特征。 (c)2006年美国物理研究所。

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