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Improving mechanical properties of carbon nanotube fibers through simultaneous solid-state cycloaddition and crosslinking

机译:通过同时固态环加成和交联改善碳纳米管纤维的力学性能

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Individual carbon nanotubes (CNTs) exhibit exceptional mechanical properties. However, difficulties remain in fully realizing these properties in CNT macro-assemblies, because the weak inter-tube forces result in the CNTs sliding past one another. Herein, a simple solid-state reaction is presented that enhances the mechanical properties of carbon nanotube fibers (CNTFs) through simultaneous covalent functionalization and crosslinking. This is the first chemical crosslinking proposed without the involvement of a catalyst or byproducts. The specific tensile strength of CNTFs obtained from the treatment employing a benzocyclobutene-based polymer is improved by 40%. Such improvement can be attributed to a reduced number of voids, impregnation of the polymer, and the formation of covalent crosslinks. This methodology is confirmed using both multiwalled nanotube (MWNT) powders and CNTFs. Thermogravimetric analysis, differential scanning calorimetry, x-ray photoelectron spectroscopy, and transmission electron microscopy of the treated MWNT powders confirm the covalent functionalization and formation of inter-tube crosslinks. This simple one-step reaction can be applied to industrial-scale production of high-strength CNTFs.
机译:单个碳纳米管(CNT)表现出特殊的机械性能。然而,难以在CNT宏组件中完全实现这些性质,因为弱的管压力导致彼此滑动的CNT。这里,提出了一种简单的固态反应,其通过同时共价官能化和交联增强碳纳米管纤维(CNTFS)的机械性能。这是不参与催化剂或副产物的第一种化学交联。从使用苯并环丁烯的聚合物的处理中获得的CNTF的特异性拉伸强度提高了40%。这种改进可以归因于减少的空隙数量,聚合物浸渍,以及共价交联的形成。使用多壁纳米管(MWNT)粉末和CNTFS来确认该方法。热重分析,差示扫描量热法,X射线光电子能谱和经处理的MWNT粉末的透射电子显微镜证实了管内交联的共价官能化和形成。这种简单的一步反应可以应用于高强度CNTF的工业规模生产。

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