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调控单层石墨烯/PMMA 纳米复合材料的界面力学行为。

Tuning the Interfacial Mechanical Behaviors of Monolayer Graphene/PMMA Nanocomposites.

机构信息

CAS Key Laboratory of Mechanical Behavior and Design of Materials, Department of Modern Mechanics, University of Science and Technology of China , Hefei 230027, China.

CAS Key Laboratory of Nanosystem and Hierarchical Fabrication, CAS Center for Excellence in Nanoscience, National Center for Nanoscience and Technology , Beijing 100190, China.

出版信息

ACS Appl Mater Interfaces. 2016 Aug 31;8(34):22554-62. doi: 10.1021/acsami.6b03069. Epub 2016 Aug 16.

Abstract

The van der Waals (vdW) force dominated interface between graphene and polymer matrix creates weak points in the mechanical sense. Chemical functionalization was expected to be an effective approach in transfer of the outstanding performance of graphene across multiple length scales up to the macroscopic level, due to possible improvements in the interfacial adhesion. However, published works showed the contradiction that improvements, insensitivity, or even worsening of macro-mechanical performance have all been reported in graphene-based polymer nanocomposites. Particularly central cause of such discrepancy is the variations in graphene/polymer interfacial chemistry, which is critical in nanocomposites with vast interfacial area. Herein, O3/H2O gaseous mixture was utilized to oxidize monolayer graphene sheet with controlled functionalization degrees. Hydrogen bonds (H bonds) are expected to form between oxidized graphene sheet/poly(methyl methacrylate) (PMMA) at the interface. On the basis of in situ tensile-micro Raman spectroscopy, the impacts of bonding types (vdW and H-bonds) on both key interfacial parameters (such as interfacial shear strength and critical length) and failure modes of graphene/PMMA nanocomposite were clarified for the first time at the microscopic level. Our results show that owing to improved interfacial interaction via H bonds, the interface tends to be stiffening and strengthening. Moreover, the mechanical properties of the functionalized graphene/PMMA interface will be set by the competition between the enhanced interfacial adhesion and the degraded elastic modulus of graphene, which was caused by structural defects in the graphene sheet during the functionalization process and could lead to catastrophic failure of graphene sheets in our experimental observation. Our results will be helpful to design various nanofiller-based nanocomposites with high mechanical performance.

摘要

范德华(vdW)力主导的石墨烯与聚合物基体之间的界面在力学意义上形成了弱点。由于可能改善界面附着力,化学官能化有望成为将石墨烯优异性能从多个长度尺度转移到宏观水平的有效方法。然而,已发表的研究工作表明存在矛盾,即在石墨烯基聚合物纳米复合材料中,已经报道了改善、不敏感甚至宏观机械性能恶化的情况。这种差异的核心原因特别是石墨烯/聚合物界面化学的变化,这在具有巨大界面面积的纳米复合材料中至关重要。在此,利用 O3/H2O 混合气体氧化具有可控官能化程度的单层石墨烯片。预计氧化石墨烯片/聚甲基丙烯酸甲酯(PMMA)之间在界面处形成氢键(H 键)。基于原位拉伸微拉曼光谱,首次在微观水平上阐明了键合类型(vdW 和 H 键)对石墨烯/PMMA 纳米复合材料的两个关键界面参数(如界面剪切强度和临界长度)和失效模式的影响。我们的结果表明,由于通过 H 键改善了界面相互作用,界面趋于变硬和增强。此外,官能化石墨烯/PMMA 界面的力学性能将受到增强的界面附着力和石墨烯弹性模量降低之间的竞争的影响,这是在官能化过程中石墨烯片的结构缺陷引起的,并且可能导致在我们的实验观察中石墨烯片的灾难性失效。我们的研究结果将有助于设计具有高机械性能的各种基于纳米填料的纳米复合材料。

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