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Engineering the interface in mechanically responsive graphene-based films

机译:在机械响应性石墨烯基薄膜中设计界面

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Due to their extraordinary mechanical properties, nanocarbon materials ( e.g. carbon nanotube and graphene) are attracting great interests in the field of nanocomposites. One unique feature in nanocarbon-based nanocomposites is their intrinsically rich interface, allowing them to adapt the microstructures in response to external loading and, in turn, to stiffen themselves. This mechanical behavior, called responsive stiffening, was usually observed in biological materials such as bones and muscles. The mechanically responsive behaviors of nanocarbon-based materials are particularly exciting because the nanocarbon-enabled huge interface area offers opportunities to tune such stiffening performance while this interface advantage is not fully exploited yet. Here, we demonstrate stiffening behaviors in graphene oxide (GO)-based film materials in response to dynamic oscillations. Through a facile method of polymer content alteration and alkali treatment, the microstructure and interlayer interaction of GO films are modified, along with the resulted responsively stiffening performance. Based on polarized Raman spectra characterizations, we attribute the stiffening mechanism to the microstructural evolution of GO films during dynamic tension as well as the polymer chains alignment. Finally, we highlight the significantly improved static mechanical properties of GO film after a simple stiffening process. Our results not only aid in the development of biomimetic, adaptive materials, but provide a mechanical way for the design of high-performance nanocarbon-based nanocomposites.
机译:由于其非凡的机械性能,纳米碳材料(例如碳纳米管和石墨烯)在纳米复合材料领域引起了极大的兴趣。纳米碳基纳米复合材料的一个独特功能是其内在的丰富界面,使它们能够适应外部负载而适应微观结构,进而使其自身变硬。这种机械行为称为响应性硬化,通常在骨骼和肌肉等生物材料中观察到。纳米碳基材料的机械响应性能特别令人兴奋,因为启用纳米碳的巨大界面区域提供了调整这种刚性性能的机会,而这种界面优势尚未得到充分利用。在这里,我们演示了响应动态振荡在基于氧化石墨烯(GO)的薄膜材料中的硬化行为。通过一种简便的聚合物含量改变和碱处理的方法,GO膜的微观结构和层间相互作用得到了改善,并具有响应性的增强性能。基于极化拉曼光谱表征,我们将硬化机理归因于动态拉伸过程中GO薄膜的微结构演变以及聚合物链的排列。最后,我们强调了经过简单的硬化处理后,GO薄膜的静态机械性能得到了显着改善。我们的研究结果不仅有助于仿生,适应性材料的开发,而且为高性能纳米碳基纳米复合材料的设计提供了一种机械方法。

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