首页> 外文期刊>Journal of nanoparticle research: An interdisciplinary forum for nanoscale science and technology >Scenarios and methods that induce protruding or released CNTs after degradation of nanocomposite materials Technology Transfer and Commercialization of Nanotechnology
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Scenarios and methods that induce protruding or released CNTs after degradation of nanocomposite materials Technology Transfer and Commercialization of Nanotechnology

机译:纳米复合材料降解后诱发碳纳米管突出或释放的场景和方法技术纳米技术的转移和商业化

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Nanocomposite materials may be considered as a low-risk application of nanotechnology, if the nanofillers remain embedded throughout the life-cycle of the products in which they are embedded. We hypothesize that release of free CNTs occurs by a combination of mechanical stress and chemical degradation of the polymer matrix. We experimentally address limiting cases: Mechanically released fragments may show tubular protrusions on their surface. Here we identify these protrusions unambiguously as naked CNTs by chemically resolved microscopy and a suitable preparation protocol. By size-selective quantification of fragments we establish as a lower limit that at least 95 % of the CNTs remain embedded. Contrary to classical fiber composite approaches, we link this phenomenon to matrix materials with only a few percent elongation at break, predicting which materials should still cover their CNT nanofillers after machining. Protruding networks of CNTs remain after photochemical degradation of the matrix, and we show that it takes the worst case combinations of weathering plus high-shear wear to release free CNTs in the order of mg/m ~2/year. Synergy of chemical degradation and mechanical energy input is identified as the priority scenario of CNT release, but its lab simulation by combined methods is still far from real-world validation.
机译:如果纳米填料在其所嵌入产品的整个生命周期中都保持嵌入状态,则可以将其视为纳米技术的低风险应用。我们假设游离的CNT的释放是通过机械应力和聚合物基质的化学降解的结合而发生的。我们通过实验解决了一些限制情况:机械释放的碎片可能在其表面上显示出管状突起。在这里,我们通过化学分辨显微镜和合适的制备方案将这些突起明确地鉴定为裸露的CNT。通过片段的大小选择性定量,我们确定至少95%的CNT保持嵌入状态作为下限。与经典的纤维复合材料方法相反,我们将此现象与断裂伸长率只有百分之几的基体材料联系在一起,预测了加工后哪些材料仍应覆盖其CNT纳米填料。碳纳米管的基体经过光化学降解后仍保留有突出的碳纳米管网络,并且我们证明,在最坏的情况下,风化和高剪切磨损会释放出毫克/米〜2 /年量级的游离碳纳米管。化学降解和机械能输入的协同作用被认为是CNT释放的优先方案,但是通过组合方法进行的实验室模拟仍然离实际验证还差得很远。

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