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基于大规模非平衡分子动力学模拟的未缠结和轻度缠结环状聚合物熔体的剪切流变学

Shear Rheology of Unentangled and Marginally Entangled Ring Polymer Melts from Large-Scale Nonequilibrium Molecular Dynamics Simulations.

作者信息

Tsamopoulos Alexandros J, Katsarou Anna F, Tsalikis Dimitrios G, Mavrantzas Vlasis G

机构信息

Department of Chemical Engineering, University of Patras and FORTH-ICE/HT, GR 26504 Patras, Greece.

Particle Technology Laboratory, Department of Mechanical and Process Engineering, ETH Zürich, CH-8092 Zürich, Switzerland.

出版信息

Polymers (Basel). 2019 Jul 17;11(7):1194. doi: 10.3390/polym11071194.

Abstract

We present results for the steady state shear rheology of non-concatenated, unentangled and marginally entangled ring poly(ethylene oxide) (PEO) melts from detailed, atomistic nonequilibrium molecular dynamics (NEMD) simulations, and compare them to the behavior of the corresponding linear melts. The applied flow field spans a wide range of shear rates, from the linear (Newtonian) to the highly non-linear (described by a power law) regime. For all melts studied, rings are found to exhibit shear thinning but to a lesser degree compared to linear counterparts, mostly due to their reduced deformability and stronger resistance to alignment in the direction of flow. These features are attributed to the more compact structure of ring molecules compared to linear chains; the latter are capable of adopting wider and more open conformations even under shear due to the freedom provided by the free ends. Similar to linear melts, rings also exhibit a first and a second normal stress coefficient; the latter is negative. The ratio of the magnitude of the two coefficients remains practically constant with shear rate and is systematically higher than the corresponding one for linear melts. Emphasis was also given to the statistics of terminal (re-orientational) relaxation times which we computed by analyzing all chains in the simulated systems one by one; it was demonstrated that long time dynamics are strongly heterogeneous both for rings and (especially) linears. Repeating the analysis under flow conditions, and as expected, we found that the applied flow field significantly suppresses dynamic heterogeneity, especially for high shear rates well beyond the Newtonian plateau. Finally, a detailed geometrical analysis revealed that the average population of ring-ring threading events in the longest melt studied here (the PEO-5k ring) remains practically unaffected by the imposed flow rate even at strong shear rates, except for multi-threadings which disappear. To further analyze this peculiar and rather unexpected effect, we computed the corresponding survival times and penetration lengths, and found that the overwhelming majority of threadings under shear are extremely weak constraints, as they are characterized by very small penetration lengths, thus also by short survival times. They are expected therefore to play only a minor (if any) role on chain dynamics.

摘要

我们通过详细的原子非平衡分子动力学(NEMD)模拟,给出了非连接、非缠结和轻度缠结的环状聚环氧乙烷(PEO)熔体稳态剪切流变学的结果,并将其与相应线性熔体的行为进行比较。所施加的流场涵盖了从线性(牛顿)到高度非线性(由幂律描述)的广泛剪切速率范围。对于所有研究的熔体,发现环状物表现出剪切变稀,但与线性对应物相比程度较小,这主要是由于它们的可变形性降低以及在流动方向上更强的抗排列性。这些特征归因于环状分子与线性链相比结构更紧凑;由于自由端提供的自由度,线性链即使在剪切下也能够采取更宽和更开放的构象。与线性熔体类似,环状物也表现出第一和第二法向应力系数;后者为负。两个系数大小的比值随剪切速率基本保持恒定,并且系统地高于线性熔体的相应比值。我们还重点关注了末端(重新取向)弛豫时间的统计,通过逐一分析模拟系统中的所有链来计算;结果表明,无论是环状物还是(特别是)线性物,长时间动力学都具有很强的非均质性。在流动条件下重复分析,正如预期的那样,我们发现所施加的流场显著抑制了动态非均质性,特别是对于远高于牛顿平台的高剪切速率。最后,详细的几何分析表明,即使在强剪切速率下,这里研究的最长熔体(PEO - 5k环)中环状物 - 环状物穿线事件的平均数量实际上不受施加流速的影响,除了多穿线事件会消失。为了进一步分析这种特殊且相当意外的效应,我们计算了相应的存活时间和穿透长度,发现剪切下绝大多数穿线是极其微弱的约束,因为它们的特征是穿透长度非常小,因此存活时间也很短。因此,预计它们对链动力学仅起次要(如果有的话)作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2464/6680584/4a2b65e71b97/polymers-11-01194-g001.jpg

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