首页> 外文会议>SAMPE conference amp; exhibition >MAGNETIC STRUCTURING OF NICKEL-COATED CARBON NANOTUBES WITH DIAZONIUM TREATMENT FOR TAILORABLE AND BULK NANOCOMPOSITE FABRICATION
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MAGNETIC STRUCTURING OF NICKEL-COATED CARBON NANOTUBES WITH DIAZONIUM TREATMENT FOR TAILORABLE AND BULK NANOCOMPOSITE FABRICATION

机译:含氮处理的镍包覆碳纳米管的磁结构可定制和块状纳米复合材料的制备

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Polymer nanocomposites are novel materials sought-after for their tailorable and advanced mechanical, electrical, thermal, and actuation/sensing properties. Desired property enhancement of nanocomposites relies on controlled distribution of nanofillers. However, it is difficult to achieve controlled distribution of nanofillers in bulk production. In this work, we experimentally investigate active nanofiller assembly using external magnetic fields, as a simple, non-contact, scalable, and energy-efficient manufacturing solution of polymer nanocomposites. Carbon nanotubes (CNTs) are selected as the nanofiller, because of their high mass-specific strength and transport properties. We first processed CNTs to make them magnetically responsive, by e-beam coating the CNT tips with nickel (Ni), after functionalizing their surfaces with oxygen plasma to promote Ni-CNT adherence. Then, we attached diazonium salt on the CNT surfaces, to improve their dispersion in and to promote covalent bonding with the bisphenol-F based epoxy matrix. CNT alignment was achieved within the viscous matrix (~70 cP), after the short (~40 min) magnetic field application of small strength (~400 G vs. ∼50 G of a typical refrigerator magnet). Further 3D tomography inspection will be conducted about CNT structuring, and associated thermal and electrical transport properties will be characterized for structure-property relationship studies in future.
机译:聚合物纳米复合材料因其可定制和先进的机械,电,热和致动/传感特性而成为新型材料。所需的纳米复合材料性能增强依赖于纳米填料的受控分布。然而,在批量生产中难以实现纳米填料的受控分布。在这项工作中,我们通过实验研究使用外部磁场的有源纳米填料组件,这是一种简单,非接触式,可扩展且节能的聚合物纳米复合材料制造解决方案。选择碳纳米管(CNT)作为纳米填料,因为它们具有较高的质量比强度和传输性能。我们首先处理了碳纳米管,以使其具有磁响应性,方法是在用氧等离子体对碳纳米管表面进行功能化以促进Ni-CNT附着之后,通过用镍(Ni)进行电子束涂覆碳纳米管尖端。然后,我们将重氮盐附着在CNT表面上,以改善其在双酚F基环氧基质中的分散性并促进与之的共价键合。在短时间(〜40分钟)磁场下以较小的强度(〜400 G与典型的冰箱磁体的〜50 G)施加CNT后,在粘性基质(〜70 cP)内实现了CNT排列。将会对CNT的结构进行进一步的3D层析成像检查,并且将来将对相关的热和电传输特性进行表征,以进行结构-特性关系研究。

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    Department of Aerospace Engineering, Pennsylvania State University Hammond Building 229 University Park PA 16803;

    Department of Aerospace Engineering, Pennsylvania State University Hammond Building 229 University Park PA 16803;

    Department of Materials Science and Engineering, Pennsylvania State University Steidle Building 205 University Park PA 16803;

    Department of Aerospace Engineering, Pennsylvania State University Hammond Building 229 University Park PA 16803;

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