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A Study of the Morphology, Dynamics, and Folding Pathways of Ring Polymers with Supramolecular Topological Constraints Using Molecular Simulation and Nonlinear Manifold Learning

机译:使用分子模拟和非线性流转学习的超分子拓扑结构与超分子拓扑约束的形态学,动力学和折叠通路研究

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摘要

Ring polymers are prevalent in natural and engineered systems, including circular bacterial DNA, crown ethers for cation chelation, and mechanical nanoswitches. The morphology and dynamics of ring polymers are governed by the chemistry and degree of polymerization of the ring and intramolecular and supramolecular topological constraints such as knots or mechanically interlocked rings. In this study, we perform molecular dynamics simulations of polyethylene ring polymers at two different degrees of polymerization and in different topological states, including a trefoil knot, catenane state (two interlocked rings), and Borromean state (three interlocked rings). We employ nonlinear manifold learning to extract the low-dimensional free energy surface to which the structure and dynamics of the polymer chain are effectively restrained. The free energy surfaces reveal how the degree of polymerization and topological constraints affect the thermally accessible conformations, chiral symmetry breaking, and folding and collapse pathways of the rings and present a means to rationally engineer ring size and topology to stabilize particular conformational states and folding pathways. We compute the rotational diffusion of the ring in these various states as a crucial property required for the design of engineered devices containing ring polymer components.
机译:环聚合物在天然和工程系统中普遍存在,包括圆形细菌DNA,阳离子螯合冠醚和机械纳米开关。环聚合物的形态和动态由环和分子内和超分子拓扑结构的聚合和聚合程度的定控,例如结或机械互锁的环。在这项研究中,我们在两种不同的聚合和不同拓扑状态下进行聚乙烯环聚合物的分子动力学模拟,包括三轴结,三角烷状态(两个互锁环)和伯罗末状态(三个互锁环)。我们采用非线性歧管学习来提取高维自由能表面,有效地抑制了聚合物链的结构和动力学。自由能表面揭示了聚合程度和拓扑限制如何影响环形的可热可访问的构象,手性对称性和折叠和折叠和折叠途径,并呈现理性工程圈尺寸和拓扑的手段,以稳定特定的构象状态和折叠途径。我们将环的旋转扩散计算在这些各种状态中,作为含有环聚合物组分的工程装置的设计所需的关键性能。

著录项

  • 来源
    《Macromolecules》 |2018年第2期|共19页
  • 作者

    Jiang Wang; Andrew L. Ferguson;

  • 作者单位

    Department of Physics Department of Materials Science and Engineering and Department of Chemical and Biomolecular Engineering University of Illinois Urbana?Champaign Urbana Illinois 61801 United States;

    Department of Physics Department of Materials Science and Engineering and Department of Chemical and Biomolecular Engineering University of Illinois Urbana?Champaign Urbana Illinois 61801 United States;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 高分子化学(高聚物);
  • 关键词

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