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Manufacturing and physico-mechanical characterization of carbon nanohorns/polyacrylonitrile nanocomposites

机译:碳纳米角/聚丙烯腈纳米复合材料的制造和物理力学表征

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摘要

The use of carbon nanohorns (SWCNHs) as a modifying filler in a polyacrylonitrile (PAN) matrix is studied with the goal of elaborating nanocomposites. The study deals with assessment of the dispersity of SWCNHs in a PAN polymer suspension. The SWCNHs were introduced into the PAN-based suspension using different methods, including mechanical stirring, ultrasonification and the combination of ultrasonification with addition of a surfactant. Agglomeration and dispersion processes of SWCNH in the polymer suspensions were studied using DLS technique and turbidimetry. The resulting properties of nanocomposite foils after solidification in water ambient were verified in various tests. The mechanical tensile properties (tensile strength, modulus and strain to fracture) of the nanocomposites before and after the dispersion process were compared. The nanocomposites obtained under optimally prepared suspension perform the highest strain to fracture in tensile test. Electrical resistivity and thermal conductivity of nanocomposites samples after appropriate dispersion of SWCNHs in the PAN suspension were also determined. The presence of SWCNH in the PAN suspension affects the structure of nanocomposites after solidification through changing structural ordering of the polymer. The study revealed that the polymeric suspensions prepared in optimum processing conditions contain the carbon aggregates the size of which correspond almost to the mean size of a dahlia flower-like structured particle, i.e., 50–250 nm and it was not possible to separate such particles into a single form of carbon nanohorn by the techniques used.
机译:研究碳纳米角(SWCNHs)作为聚丙烯腈(PAN)基质中的改性填料的用途,目的是精制纳米复合材料。该研究涉及评估SWCNHs在PAN聚合物悬浮液中的分散性。使用不同的方法将SWCNHs引入基于PAN的悬浮液中,包括机械搅拌,超声处理以及超声处理与添加表面活性剂的组合。利用DLS技术和比浊法研究了SWCNH在聚合物悬浮液中的团聚和分散过程。在各种环境下验证了在水环境中固化后纳米复合箔的性能。比较了纳米复合材料在分散过程之前和之后的机械拉伸性能(拉伸强度,模量和断裂应变)。在最佳制备的悬浮液下获得的纳米复合材料在拉伸试验中表现出最高的断裂应变。还确定了SWCNHs在PAN悬浮液中的适当分散后,纳米复合材料样品的电阻率和导热率。 PAN悬浮液中SWCNH的存在通过改变聚合物的结构顺序来影响固化后的纳米复合材料的结构。研究表明,在最佳工艺条件下制备的聚合物悬浮液包含的碳聚集体的大小几乎对应于大丽花花状结构化颗粒的平均大小,即50-250 nm,并且不可能分离出此类颗粒通过使用的技术将其转变为单一形式的碳纳米角。

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  • 来源
    《Journal of Materials Science》 |2011年第17期|p.5680-5689|共10页
  • 作者单位

    Faculty of Materials Science and Ceramics, Department of Biomaterials, AGH-University of Science and Technology in Krakow, al.Mickiewicza 30, 30-059, Krakow, Poland;

    Faculty of Materials Science and Ceramics, Department of Biomaterials, AGH-University of Science and Technology in Krakow, al.Mickiewicza 30, 30-059, Krakow, Poland;

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