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Relaxation and stiffening dynamics of a single semiflexible polymer chain.

机译:单个半柔性聚合物链的松弛和硬化动力学。

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Both synthetic and biological polymers are a challenge to study because of the many features and functional roles they carry. A good understanding of the macromolecule's dynamical properties is essential for biological processes such as the cytoskeleton dynamics of actin or in creating novel materials such as biodegradable nanocomposites. Here we focus on the Brownian dynamics of single semiflexible polymer chains, specifically the relaxation and stiffening behaviors. To date, the transient modeling of dilute solutions has concentrated mainly on flexible chains. Semiflexible polymers, with a persistence length comparable to or larger than their contour length, show distinct properties in solution.; Brownian dynamics simulations based on a discretized version of the Kratky-Porod chain model were employed. First, the relaxation of a bead-rod polymer chain from an initially straight configuration was followed. Through a scaling-law analysis, universal relaxation laws were determined covering all time scales. A correlation describing the properties studied by the single parameter of chain length was noticed. Based on this, we were able to confirm and explain the chain's stress and optical properties, as well as derive a nonlinear stress-optic law valid for semiflexible chains at any time period. Also, we determine the relaxation for long semiflexible chains exhibit two intermediate-time behaviors, as a result of the interplay of Brownian and bending forces on the link tensions.; A second project involved the relaxation dynamics of a worm-like bead-spring chain. Existing relaxation simulations of this bead-spring model are limited to the stress behavior. Here we monitor the short and intermediate-time relaxation behaviors of a nearly extended semiflexible chain. We also look at the effects of the Kuhn length on a chain of constant length.; Finally, the interesting behavior of the coil-helix-rod stiffening transition was studied. When subjected to external forces or a change in solution conditions the macromolecule may stiffen. Being able to control the chain stiffness is of technological importance especially for nanotechnology devices where the constraint of the walls limits the entropy available to the chain. We have successfully simulated the transient conformational behavior and subsequently understand the chain dynamics involved through analysis of the chain's length, width, and stress.
机译:合成聚合物和生物聚合物都面临着挑战,因为它们具有许多特征和功能。对大分子动力学特性的充分了解对于生物过程(例如肌动蛋白的细胞骨架动力学)或在创建新型材料(例如可生物降解的纳米复合材料)方面至关重要。在这里,我们关注单个半柔性聚合物链的布朗动力学,特别是松弛和硬化行为。迄今为止,稀溶液的瞬态建模主要集中在柔性链上。具有等于​​或大于其轮廓长度的持久长度的半柔性聚合物在溶液中显示出不同的性质。采用了基于离散化的Kratky-Porod链模型的布朗动力学模拟。首先,接着使珠-杆聚合物链从最初的笔直构型松弛。通过缩放定律分析,确定了涵盖所有时间范围的普遍松弛定律。注意到描述通过链长的单个参数研究的性质的相关性。在此基础上,我们能够确认和解释链的应力和光学特性,并得出适用于任何时间段的半柔韧性链的非线性应力-光学定律。同样,由于布朗和弯曲力对链条张力的相互作用,我们确定长的半柔性链的松弛表现出两个中间时间行为。第二个项目涉及蠕虫状的珠弹簧链的松弛动力学。此珠弹簧模型的现有松弛模拟仅限于应力行为。在这里,我们监视一条几乎延伸的半柔性链的短时和中间时间的松弛行为。我们还研究了Kuhn长度对恒定长度链的影响。最后,研究了线圈-螺旋-杆刚度过渡的有趣行为。当受到外力或溶液条件变化时,大分子可能会变硬。能够控制链条刚度具有技术重要性,特别是对于纳米技术设备,其中壁的约束限制了可用于链条的熵。我们已经成功地模拟了瞬态构象行为,随后通过分析链的长度,宽度和应力来了解所涉及的链动力学。

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