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首页> 外文期刊>The Journal of Chemical Physics >Brownian dynamics simulations of polyelectrolyte molecules traveling through an entropic trap array during electrophoresis
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Brownian dynamics simulations of polyelectrolyte molecules traveling through an entropic trap array during electrophoresis

机译:电泳过程中穿过电解质阱阵列的聚电解质分子的布朗动力学模拟

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摘要

Using Brownian dynamics simulations of wormlike chain bead-spring models, the dynamics of linear and star-branched polyelectrolyte molecules traveling through an array of entropic traps during electrophoresis have been investigated. First, the effectiveness of using coarse-grained bead-spring systems for linear molecules to model the electrophoretic process was demonstrated and compared to previous bead-rod (Kramers) chain simulations by Panwar and Kumar [Macromolecules 39, 1297 (2006)]. Second, the coarse-grained bead-spring model has been extended to investigate the effect of branching on the dynamics of molecules through the entropic trap array. Initial studies indicate the reduced mobility of star-branched molecules as compared to equivalent linear molecules. The radius of gyration of the polymer molecule appears to be the dominating factor governing the time scales encountered during traversal of the entropic trapping array. (C) 2007 American Institute of Physics.
机译:使用蠕虫状链珠弹簧模型的布朗动力学模拟,研究了线性和星形支化聚电解质分子在电泳过程中通过一系列熵阱的动力学。首先,证明了对线性分子使用粗粒珠-弹簧系统建模电泳过程的有效性,并将其与Panwar和Kumar先前的珠-棒(Kramers)链模拟[Macromolecules 39,1297(2006)]进行了比较。其次,扩展了粗粒珠-弹簧模型,以研究通过熵阱阵列对分子动力学的支化作用。初步研究表明,与等价的线性分子相比,星形支链分子的迁移率降低。聚合物分子的回转半径似乎是控制在熵陷阱阵列穿越过程中遇到的时间尺度的主要因素。 (C)2007美国物理研究所。

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