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各向异性纳米粒子在嵌段共聚物层中的有序排列:耗散粒子动力学模拟和分子理论。

Ordering of anisotropic nanoparticles in diblock copolymer lamellae: Simulations with dissipative particle dynamics and a molecular theory.

机构信息

Technische Universität München, James-Franck-Str. 1, 85747 Garching, Germany.

Topchiev Institute of Petrochemical Synthesis, Russian Academy of Sciences, Leninsky Prosp. 29, 119991 Moscow, Russia.

出版信息

J Chem Phys. 2017 Apr 14;146(14):144902. doi: 10.1063/1.4979897.

Abstract

Local distribution and orientation of anisotropic nanoparticles in microphase-separated symmetric diblock copolymers has been simulated using dissipative particle dynamics and analyzed with a molecular theory. It has been demonstrated that nanoparticles are characterized by a non-trivial orientational ordering in the lamellar phase due to their anisotropic interactions with isotropic monomer units. In the simulations, the maximum concentration and degree of ordering are attained for non-selective nanorods near the domain boundary. In this case, the nanorods have a certain tendency to align parallel to the interface in the boundary region and perpendicular to it inside the domains. Similar orientation ordering of nanoparticles located at the lamellar interface is predicted by the molecular theory which takes into account that the nanoparticles interact with monomer units via both isotropic and anisotropic potentials. Computer simulations enable one to study the effects of the nanorod concentration, length, stiffness, and selectivity of their interactions with the copolymer components on the phase stability and orientational order of nanoparticles. If the volume fraction of the nanorods is lower than 0.1, they have no effect on the copolymer transition from the disordered state into a lamellar microstructure. Increasing nanorod concentration or nanorod length results in clustering of the nanorods and eventually leads to a macrophase separation, whereas the copolymer preserves its lamellar morphology. Segregated nanorods of length close to the width of the diblock copolymer domains are stacked side by side into smectic layers that fill the domain space. Thus, spontaneous organization and orientation of nanorods leads to a spatial modulation of anisotropic composite properties which may be important for various applications.

摘要

各向异性纳米粒子在微相分离对称二嵌段共聚物中的局域分布和取向已通过耗散粒子动力学进行了模拟,并通过分子理论进行了分析。结果表明,由于纳米粒子与各向同性单体单元的各向异性相互作用,纳米粒子在层状相中表现出复杂的取向有序性。在模拟中,非选择性纳米棒在畴界附近达到最大浓度和最大有序度。在这种情况下,纳米棒在边界区域有一定的平行于界面排列的趋势,而在畴内则垂直于界面排列。分子理论预测位于层状界面处的纳米粒子具有相似的取向有序性,该理论考虑到纳米粒子通过各向同性和各向异性势与单体单元相互作用。计算机模拟使人们能够研究纳米棒浓度、长度、刚度和与共聚组成相互作用的选择性对纳米粒子相稳定性和取向有序性的影响。如果纳米棒的体积分数低于 0.1,则它们对从无序状态到层状微结构的共聚转变没有影响。增加纳米棒浓度或纳米棒长度会导致纳米棒聚集,最终导致宏观相分离,而共聚保留其层状形态。长度接近二嵌段共聚物畴宽度的分隔纳米棒并排堆叠成层状,填充畴空间。因此,纳米棒的自发组织和取向导致各向异性复合材料性能的空间调制,这对于各种应用可能很重要。

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