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DNA as a Model for Probing Polymer Entanglements: Circular Polymers and Non-Classical Dynamics

机译:DNA作为探测聚合物纠缠的模型:圆形聚合物和非经典动力学

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摘要

Double-stranded DNA offers a robust platform for investigating fundamental questions regarding the dynamics of entangled polymer solutions. The exceptional monodispersity and multiple naturally occurring topologies of DNA, as well as a wide range of tunable lengths and concentrations that encompass the entanglement regime, enable direct testing of molecular-level entanglement theories and corresponding scaling laws. DNA is also amenable to a wide range of techniques from passive to nonlinear measurements and from single-molecule to bulk macroscopic experiments. Over the past two decades, researchers have developed methods to directly visualize and manipulate single entangled DNA molecules in steady-state and stressed conditions using fluorescence microscopy, particle tracking and optical tweezers. Developments in microfluidics, microrheology and bulk rheology have also enabled characterization of the viscoelastic response of entangled DNA from molecular levels to macroscopic scales and over timescales that span from linear to nonlinear regimes. Experiments using DNA have uniquely elucidated the debated entanglement properties of circular polymers and blends of linear and circular polymers. Experiments have also revealed important lengthscale and timescale dependent entanglement dynamics not predicted by classical tube models, both validating and refuting new proposed extensions and alternatives to tube theory and motivating further theoretical work to describe the rich dynamics exhibited in entangled polymer systems.
机译:双链DNA为研究有关纠缠聚合物溶液动力学的基本问题提供了一个强大的平台。 DNA出色的单分散性和多种自然发生的拓扑结构,以及涵盖纠缠机制的各种可调长度和浓度,可直接测试分子水平的纠缠理论和相应的定律。 DNA也适用于从被动测量到非线性测量以及从单分子到大体积宏观实验的广泛技术。在过去的二十年中,研究人员开发了一些方法,可以使用荧光显微镜,粒子跟踪和光学镊子在稳定状态和压力条件下直接可视化和处理单个纠缠的DNA分子。微流体学,微流变学和本体流变学的发展也使缠结DNA从分子水平到宏观尺度以及从线性到非线性范围的时间尺度的粘弹性响应都能得到表征。使用DNA进行的实验独特地阐明了圆形聚合物以及线性和圆形聚合物混合物的缠结特性。实验还揭示了经典管模型无法预测的重要的长度尺度和时间尺度相关的缠结动力学,验证和反驳了新提出的对管理论的扩展和替代方法,并激励了进一步的理论工作来描述缠结聚合物系统中展现的丰富动力学。

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