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Quantitative In Situ Mechanical Characterization of the Effects of Chemical Functionalization on Individual Carbon Nanofibers

机译:化学功能化对单个碳纳米纤维影响的定量原位机械表征

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摘要

Carbon nanofibers (CNFs) have been used for applications in composite material for decades because of their unique mechanical, thermal, and electrical properties. Consequently, an in-depth understanding of mechanical properties of individual CNFs, particularly after chemical functionalization, would provide important insight into its effective integration into composite materials, Fluorination and amination of CNFs is achieved and systematic chemical characterizations of functionalized CNFs are performed. An in situ tensile testing method, which combines a simple microfabricated device with a quantitative nanoindenter inside a scanning electron microscope (SEM) chamber, is used to measure mechanical properties of individual pristine, fluorinated, and amino-functionalized CNFs. The nominal CNFs strengths follow the Weibull distribution and the fluorinated CNFs are found to possess higher nominal strength but similar strain when compared with the pristine and amino-functionalized CNFs. SEM fracture surfaces analysis shows that all nanofibers failed in a similar cup-and-cone fashion. Microscopy image sof fluorinated CNFs reveal an unexpected change in the hollow core before and after fiber fracture, which is attributed to the possible effects of fluorination-induced compression on nanofiber surfaces. The results demonstrate the potential of fluorination for improving both the mechanical properties of CNFs and their successful integration into composites.
机译:碳纳米纤维(CNF)由于其独特的机械,热和电性能已在复合材料中使用数十年。因此,深入了解单个CNF的机械性能,特别是在化学功能化之后,将为有效整合到复合材料中提供重要的见识,实现CNF的氟化和胺化,并对功能化CNF进行系统的化学表征。原位拉伸测试方法结合了简单的微细加工设备和扫描电子显微镜(SEM)腔室内的定量纳米压头,用于测量各个原始的,氟化的和氨基官能化CNF的机械性能。 CNF的标称强度遵循Weibull分布,与原始和氨基官能化的CNF相比,氟化CNF具有更高的标称强度,但具有相似的应变。 SEM断裂表面分析表明,所有纳米纤维都以类似的圆锥形方式破裂。氟化CNF的显微镜图像揭示了纤维断裂前后中空芯的意外变化,这归因于氟化诱导的压缩对纳米纤维表面的可能影响。结果表明,氟化具有改善CNF的机械性能及其成功整合到复合材料中的潜力。

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  • 来源
    《Advanced Functional Materials》 |2012年第19期|4070-4077|共8页
  • 作者单位

    Department of Mechanical Engineering and Materials Science Rice University Houston, TX 77005, USA;

    Department of Mechanical Engineering and Materials Science Rice University Houston, TX 77005, USA;

    Department of Mechanical Engineering and Materials Science Rice University Houston, TX 77005, USA;

    Department of Chemical and Biomolecular Engineering Cullen College of Engineering University of Houston Houston, TX 77204, USA;

    Department of Mechanical Engineering and Materials Science Rice University Houston, TX 77005, USA;

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