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Effect of molecular topology on the transport properties of dendrimers in dilute solution at Theta temperature: A Brownian dynamics study

机译:分子拓扑对θ温度下稀溶液中树枝状大分子迁移特性的影响:布朗动力学研究

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Structure and transport properties of dendrimers in dilute solution are studied with the aid of Brownian dynamics simulations. To investigate the effect of molecular topology on the properties, linear chain, star, and dendrimer molecules of comparable molecular weights are studied. A bead-spring chain model with finitely extensible springs and fluctuating hydrodynamic interactions is used to represent polymer molecules under Theta conditions. Structural properties as well as the diffusivity and zero-shear-rate intrinsic viscosity of polymers with varied degrees of branching are analyzed. Results for the free-draining case are compared to and found in very good agreement with the Rouse model predictions. Translational diffusivity is evaluated and the difference between the short-time and long-time behavior due to dynamic correlations is observed. Incorporation of hydrodynamic interactions is found to be sufficient to reproduce the maximum in the intrinsic viscosity versus molecular weight observed experimentally for dendrimers. Results of the nonequilibrium Brownian dynamics simulations of dendrimers and linear chain polymers subjected to a planar shear flow in a wide range of strain rates are also reported. The flow-induced molecular deformation of molecules is found to decrease hydrodynamic interactions and lead to the appearance of shear thickening. Further, branching is found to suppress flow-induced molecular alignment and deformation. (C) 2008 American Institute of Physics.
机译:借助布朗动力学模拟研究了树枝状大分子在稀溶液中的结构和传输性能。为了研究分子拓扑对性质的影响,研究了可比较分子量的线性链,星形和树枝状聚合物分子。具有有限可扩展的弹簧和波动的水动力相互作用的珠-弹簧链模型用于表示在Theta条件下的聚合物分子。分析了具有不同支化度的聚合物的结构特性以及扩散率和零剪切率特性粘度。比较了自由排水情况的结果,并与Rouse模型的预测非常吻合。评估平移扩散率,并观察到由于动态相关而引起的短期和长期行为之间的差异。发现结合水动力相互作用足以重现对于树状聚合物实验观察到的特性粘度对分子量的最大值。还报道了在大范围的应变速率下经受平面剪切流的树枝状聚合物和线性链聚合物的非平衡布朗动力学模拟结果。发现分子的流致分子变形降低了流体动力相互作用并导致出现剪切增稠。此外,发现分支可抑制流动引起的分子排列和变形。 (C)2008美国物理研究所。

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