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Tailoring the Static and Dynamic Mechanical Properties of Tri-Block Copolymers through Molecular Dynamics Simulation

机译:通过分子动力学模拟调整三嵌段共聚物的静态和动态力学性能

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摘要

Although the research of the self-assembly of tri-block copolymers has been carried out widely, little attention has been paid to study the mechanical properties and to establish its structure-property relation, which is of utmost significance for its practical applications. Here, we adopt molecular dynamics simulation to study the static and dynamic mechanical properties of the ABA tri-block copolymer, by systematically varying the morphology, the interaction strength between A-A blocks, the temperature, the dynamic shear amplitude and frequency. In our simulation, we set the self-assembled structure formed by A-blocks to be in the glassy state, with the B-blocks in the rubbery state. With the increase of the content of A-blocks, the spherical, cylindrical and lamellar domains are formed, respectively, exhibiting a gradual increase of the stress-strain behavior. During the self-assembly process, the stress-strain curve is as well enhanced. The increase of the interaction strength between A-A blocks improves the stress-strain behavior and reduces the dynamic hysteresis loss. Since the cylindrical domains are randomly dispersed, the stress-strain behavior exhibits the isotropic mechanical property; while for the lamellar domains, the mechanical property seems to be better along the direction perpendicular to than parallel to the lamellar direction. In addition, we observe that with the increase of the dynamic shear amplitude and frequency, the self-assembled domains become broken up, resulting in the decrease of the storage modulus and the increase of the hysteresis loss, which holds the same conclusion for the increase of the temperature. Our work provides some valuable guidance to tune the static and dynamic mechanical properties of ABA tri-block copolymer in the field of various applications.
机译:尽管对三嵌段共聚物的自组装的研究已经广泛开展,但对力学性能的研究和建立其结构-性能关系的研究却很少,这对其实际应用具有最重要的意义。在这里,我们通过分子动力学模拟,通过系统地改变形态,AA嵌段之间的相互作用强度,温度,动态剪切振幅和频率,来研究ABA三嵌段共聚物的静态和动态力学性能。在我们的模拟中,我们将由A嵌段形成的自组装结构设置为玻璃态,而将B嵌段形成为橡胶态。随着A-嵌段含量的增加,分别形成球形,圆柱形和层状结构域,表现出应力-应变行为的逐渐增加。在自组装过程中,应力-应变曲线也得到了增强。 A-A块之间相互作用强度的增加改善了应力应变行为并减少了动态磁滞损耗。由于圆柱域是随机分散的,因此应力应变行为表现出各向同性的机械性能;对于层状区域,沿垂直于垂直方向的机械性能似乎好于平行于层状方向的机械性能。此外,我们观察到,随着动态剪切振幅和频率的增加,自组装域被破坏,从而导致储能模量下降和磁滞损耗的增加,对于增加的结果保持相同的结论。温度。我们的工作为在各种应用领域中调整ABA三嵌段共聚物的静态和动态力学性能提供了一些有价值的指导。

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