SISSA, International School for Advanced Studies, via Bonomea 265, I-34136 Trieste, Italy.
Dipartimento di Fisica e Astronomia "Galileo Galilei", sezione CNISM, Università degli Studi di Padova, via Marzolo 8, I-35131 Padova, Italy.
Soft Matter. 2017 Jan 25;13(4):795-802. doi: 10.1039/c6sm02551j.
In this theoretical study we discuss a novel method for sorting ring polymers according to their topological, knotted state. The proposed approach harnesses the rich dynamical behaviour of polymers confined inside spatially-modulated nanochannels. The longitudinal mobility of the rings is shown to have two key properties that are ideally suited for knot sorting. First, at fixed topology, the mobility has an intriguing oscillatory dependence on chain length. Second, the mobility ranking of different knot types is inverted upon increasing the chain length. We show that this complex interplay of channel geometry, chain length and topology can be rationalised within a simple theoretical framework based on Fick-Jacobs's diffusive theory. The results and the interpretative scheme ought to be useful for designing microfluidic devices with optimal topological sorting capabilities.
在这项理论研究中,我们讨论了一种根据环聚合物拓扑、扭结状态对其进行分类的新方法。所提出的方法利用了聚合物在空间调制纳米通道内的丰富动力学行为。结果表明,环的纵向迁移率具有两个关键特性,非常适合用于扭结分类。首先,在固定拓扑结构下,迁移率与链长之间存在有趣的振荡关系。其次,随着链长的增加,不同扭结类型的迁移率排序发生反转。我们表明,通道几何形状、链长和拓扑结构的这种复杂相互作用可以在基于 Fick-Jacobs 扩散理论的简单理论框架内得到合理化。该结果和解释方案应该有助于设计具有最佳拓扑分类能力的微流控装置。