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Novel nanocomposites made of boron nitride nanotubes and a physical gel

机译:由氮化硼纳米管和物理凝胶制成的新型纳米复合材料

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This article describes successful incorporation of multiwalled boron nitride nanotubes (BNNTs) and various functionalized BNNTs by Lewis bases such as trioctylamine (TOA),tributylamine (TBA), and triphenylphosphine (TPP), etc., in organogels formed by triphenylenevinylene (TPV)-based low molecular weight gelator (LMWG) in toluene and consequent characterization of the resulting gel nanocomposites. Functionalized BNNTs were synthesized first, and the presence of tubular structures with high aspect ratio andincreased diameter compared to the starting BNNTs was confirmed by SEM, TEM, and Raman spectroscopy. The micrographs of composites of 1 and BNNTs showed evidence of wrapping of the gelator molecules on to the BNNT surface presumably brought about by π-πstacking and van der Waals interactions. This leads to the formation of densely packed and directionally aligned fibrous networks. Such "reinforced" aggregation of the gelator molecules in presence of doped BNNTs led to an increase in the sol-to-gel transition temperature and the solidification temperature of the gel nanocomposites as revealed from differential scanning calorimetry. Rheological investigations of the gel nanocomposites indicatethat the flow properties of the resulting materials become resistant to applied stress upon incorporation of even a very low wt %of BNNTs. Finally, the increase in thermal conductivity of the nanocomposite compared to the gelator alone was observed for the temperature range of 0-60°C which may make these compositespotentially useful in various applications depending on the choice and the amount of BNNT loading in the composite.
机译:本文描述了通过三辛胺(TOA),三丁胺(TBA)和三苯膦(TPP)等路易斯碱成功将多壁氮化硼纳米管(BNNT)和各种功能化BNNT掺入由三亚苯基亚乙烯基(TPV)-形成的有机凝胶中基低分子量胶凝剂(LMWG)在甲苯中的合成,以及随之而来的凝胶纳米复合材料的表征。首先合成功能化的BNNT,并通过SEM,TEM和Raman光谱证实了与起始BNNT相比具有高长宽比和直径增大的管状结构的存在。 1和BNNTs的复合材料的显微照片显示,可能是由π-π堆积和范德华相互作用引起的胶凝剂分子在BNNT表面的包裹。这导致形成密集堆积和定向排列的纤维网络。如通过差示扫描量热法所揭示的,在掺杂的BNNT的存在下,胶凝剂分子的这种“增强”聚集导致了溶胶-凝胶转变温度和凝胶纳米复合材料的固化温度的增加。凝胶纳米复合材料的流变学研究表明,即使掺入了非常低wt%的BNNT,所得材料的流动性能也变得能够抵抗施加的应力。最后,在0-60℃的温度范围内观察到与单独的凝胶剂相比,纳米复合材料的热导率增加,这取决于组合物中BNNT的负载量和选择,可以使这些复合物潜在地在各种应用中有用。

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