Suppr超能文献

聚合物-纳米粒子界面行为再探:分子动力学研究。

Polymer-nanoparticle interfacial behavior revisited: a molecular dynamics study.

机构信息

Key Laboratory of Beijing City on Preparation and Processing of Novel Polymer Materials, PR China.

出版信息

Phys Chem Chem Phys. 2011 Jul 28;13(28):13058-69. doi: 10.1039/c0cp02952a. Epub 2011 Jun 20.

Abstract

By tuning the polymer-filler interaction, filler size and filler loading, we use a coarse-grained model-based molecular dynamics simulation to study the polymer-filler interfacial structural (the orientations at the bond, segment and chain length scales, chain size and conformation), dynamic and stress-strain properties. Simulated results indicate that the interfacial region is composed of partial segments of different polymer chains, which is consistent with the experimental results presented by Chen et al. (Macromolecules, 2010, 43, 1076). Moreover, it is found that the interfacial region is within one single chain size (R(g)) range, irrespective of the polymer-filler interaction and the filler size, beyond which the bulk behavior appears. In the interfacial region, the orientation and dynamic behaviors are induced by the interfacial enthalpy, while the size and conformation of polymer chains near the filler are controlled by the configurational entropy. In the case of strong polymer-filler interaction (equivalent to the hydrogen bond), the innerest adsorbed polymer segments still undergo adsorption-desorption process, the transport of chain mass center in the interfacial region exhibits away from the glassy behavior, and no plastic-like yielding point appears in the stress-strain curve, which indicates that although the mobility of interfacial polymer chains is restricted, there exist no "polymer glassy layers" surrounding the filler. In addition, it is evidenced that the filler particle prefers selectively adsorbing the long polymer chains for attractive polymer-filler interaction, validating the experimental explanation of the change of the bound rubber (BR). In short, this work provides important information for further experimental and simulation studies of polymer-nanoparticle interfacial behavior.

摘要

通过调整聚合物-填料相互作用、填料尺寸和填料负载,我们使用基于粗粒化模型的分子动力学模拟研究了聚合物-填料界面结构(键、段和链长尺度、链尺寸和构象的取向)、动态和应力-应变特性。模拟结果表明,界面区域由不同聚合物链的部分链段组成,这与 Chen 等人提出的实验结果一致(Macromolecules,2010,43,1076)。此外,还发现界面区域处于单个链尺寸(R(g))范围内,与聚合物-填料相互作用和填料尺寸无关,超出该范围则呈现出体相行为。在界面区域,取向和动态行为是由界面焓引起的,而靠近填料的聚合物链的大小和构象则由构象熵控制。在聚合物-填料相互作用较强(相当于氢键)的情况下,最内层吸附的聚合物链段仍经历吸附-解吸过程,链质心在界面区域的传输表现出远离玻璃化行为,并且在应力-应变曲线上没有出现塑性屈服点,这表明尽管界面聚合物链的迁移率受到限制,但不存在围绕填料的“聚合物玻璃化层”。此外,还证实了对于有吸引力的聚合物-填料相互作用,填料颗粒更倾向于选择性地吸附长聚合物链,验证了结合橡胶(BR)变化的实验解释。总之,这项工作为进一步研究聚合物-纳米颗粒界面行为的实验和模拟研究提供了重要信息。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验