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使用粗粒度分子动力学模拟理解石墨烯增强聚碳酸酯纳米复合材料的力学和粘弹性特性

Understanding the Mechanical and Viscoelastic Properties of Graphene Reinforced Polycarbonate Nanocomposites Using Coarse-Grained Molecular Dynamics Simulations.

作者信息

Yang Jie, Custer Daniel, Chun Chiang Cho, Meng Zhaoxu, Yao X H

机构信息

Department of Engineering Mechanics, South China University of Technology, Guangzhou, Guangdong 510640, China.

Department of Mechanical Engineering, Clemson University, Clemson, SC 29634, USA.

出版信息

Comput Mater Sci. 2021 Apr 14;191. doi: 10.1016/j.commatsci.2021.110339. Epub 2021 Feb 15.

Abstract

Incorporating graphene nanosheets into a polymer matrix is a promising way to utilize the remarkable electronic, thermal, and mechanical properties of graphene. However, the underlying mechanisms near the graphene-polymer interface remain poorly understood. In this study, we employ coarse-grained molecular dynamics (MD) simulations to investigate the nanoscale mechanisms present in graphene-reinforced polycarbonate (GRPC) and the effect of those mechanisms on GRPC's mechanical properties. With a mean-squared displacement analysis, we find that the polymer chains near the GRPC interface exhibit lower mobility than the chains further from the graphene sheet. We also show that the embedding of graphene increases Young's modulus and yield strength of bulk PC. Through non-equilibrium MD simulations and a close look into the deformation mechanisms, we find that early strain localization arises in GRPC, with voids being concentrated further away from the graphene sheet. These results indicate that graphene nanosheets promote the heterogeneous deformation of GRPC. Additionally, to gain deeper insight into the mechanical, interfacial, and viscoelastic properties of GRPC, we study the effects of varying PC chain lengths and interfacial interactions as well as the comparative performance of GRPC and PC under small amplitude oscillatory shear tests. We find that increasing the interfacial interaction leads to an increase in both storage and loss moduli, whereas varying chain length has minimal influence on the dynamic modulus of GRPC. This study contributes to the fundamental understanding of the nanoscale failure mechanisms and structure-property relationships of graphene reinforced polymer nanocomposites.

摘要

将石墨烯纳米片融入聚合物基体是利用石墨烯卓越的电子、热学和力学性能的一种很有前景的方法。然而,石墨烯-聚合物界面附近的潜在机制仍知之甚少。在本研究中,我们采用粗粒度分子动力学(MD)模拟来研究石墨烯增强聚碳酸酯(GRPC)中存在的纳米级机制以及这些机制对GRPC力学性能的影响。通过均方位移分析,我们发现GRPC界面附近的聚合物链比远离石墨烯片的链表现出更低的迁移率。我们还表明,石墨烯的嵌入提高了块状聚碳酸酯的杨氏模量和屈服强度。通过非平衡MD模拟并仔细研究变形机制,我们发现在GRPC中早期应变局部化出现,空隙集中在远离石墨烯片的地方。这些结果表明石墨烯纳米片促进了GRPC的非均匀变形。此外,为了更深入地了解GRPC的力学、界面和粘弹性性能,我们研究了聚碳酸酯链长度和界面相互作用变化的影响以及GRPC和聚碳酸酯在小振幅振荡剪切试验下的比较性能。我们发现增加界面相互作用会导致储能模量和损耗模量都增加,而改变链长度对GRPC的动态模量影响最小。本研究有助于从根本上理解石墨烯增强聚合物纳米复合材料的纳米级破坏机制和结构-性能关系。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/84e0/7963262/593905652478/nihms-1669647-f0001.jpg

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