首页> 外文期刊>ACS applied materials & interfaces >'Sliding Crystals' on Low-Dimensional Carbonaceous Nanofillers as Distributed Nanopistons for Highly Damping Materials
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'Sliding Crystals' on Low-Dimensional Carbonaceous Nanofillers as Distributed Nanopistons for Highly Damping Materials

机译:低维碳质纳米填料的“滑动晶体”为高度阻尼材料作为分布式纳米多孔

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摘要

Improving energy dissipation in lightweight polymer nanocomposites to achieve environmentally friendly and mechanically stable structures has reached a limit because of the low-density electrostatic interactions that can be harnessed through the stick-slip mechanism between carbonaceous nanofillers and polymeric chains wrapped around them. In this paper, the atomic friction between the two nanocomposite components is greatly amplified by locally increasing the density of the energetically higher noncovalent bonds. This gives rise to a new material design concept in which crystallite structures, nucleated around the carbonaceous nanofillers, become the source of enhanced energy dissipation. The rheological concept is a nanopiston unit consisting of a carbon nanotube (CNT) as a nanofiller coated with crystallite structures which, upon unconventionally and reversibly overcoming the interfacial interaction forces, monolithically roto-translate from an energetically stable state to the adjacent states. The efficiency of this novel "sliding crystals" mechanism is proven by its higher dissipation capability that turns out to be at least twice as much as that of the conventional CNT/polymer stick slip within a larger strain range.
机译:改善轻质聚合物纳米复合材料中的能量耗散以实现环境友好且机械稳定的结构由于低密度的静电相互作用而达到极限,这可以通过碳质纳米填料和周围包裹的聚合物链之间的粘滑机制来利用。在本文中,通过局部增加了能量上更高的非共价键的密度,大大放大了两种纳米复合材料组分之间的原子摩擦。这导致了一种新的材料设计理念,其中微晶结构,围绕碳质纳米填料核化成核,成为增强的能量耗散的源。流变概念是由碳纳米管(CNT)组成的纳米孔单元,作为纳米填充物,其涂有晶体结构,其在非常规和可逆地克服界面相互作用力时,从对相邻状态的电力充沛地稳定状态单片转换。通过其较高的耗散能力证明了这种新颖的“滑动晶体”机理的效率,其结果是至少两倍的常规CNT /聚合物棒滑移在较大的应变范围内。

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