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Fabrication of a multifunctional graphene/polyvinylphosphonic acid/cotton nanocomposite via facile spray layer-by-layer assembly

机译:通过简便的逐层喷涂制备多功能石墨烯/聚乙烯基膦酸/棉纳米复合材料

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摘要

Graphene is a well-known emerging material with a wide range of applications. Despite its recent uses in polymer science, the immobilization of graphene on textile substrates is a major research thrust. Layer-by-layer (LBL) coating is a simple and cost-effective approach for stabilizing nanoparticles on different substrates to control properties, depending on the number of deposited layers. We assembled cationic graphene sheets using polyvinylphosphonic acid as an anionic thermal-resistant polymer on cotton via LBL coating. Fourier transform infrared spectra of the produced nanocomposite confirmed interfacial interactions among the graphene sheets, the polyvinylphosphonic acid and cotton in the coating layers; X-ray diffraction spectra revealed no changes in the cellulose bulk structure due to these interactions. Contact-angle measurements and thermogravimetric analyses showed that graphene and polyvinylphosphonic acid improved the thermal stability and hydrophobicity of cotton. Our results also suggest that graphene and polyvinylphosphonic are not only able to protect cotton against solar ultraviolet rays but also possess excellent near infrared reflectivity, electrical conductivity and electromagnetic shielding. These beneficial properties make nanocomposites promising structures for multifunctional applications.
机译:石墨烯是一种众所周知的新兴材料,具有广泛的应用范围。尽管石墨烯最近在聚合物科学中得到了应用,但将石墨烯固定在纺织品基质上是主要的研究方向。逐层(LBL)涂层是一种简单且经济高效的方法,用于稳定不同基材上的纳米颗粒以控制性能,具体取决于沉积层的数量。我们通过LBL涂层在棉上使用聚乙烯基膦酸作为阴离子耐热聚合物组装了阳离子石墨烯片。所产生的纳米复合材料的傅立叶变换红外光谱证实了石墨烯片,聚乙烯基膦酸和棉在涂层中的界面相互作用。 X射线衍射光谱表明,由于这些相互作用,纤维素本体结构没有变化。接触角测量和热重分析表明,石墨烯和聚乙烯基膦酸改善了棉花的热稳定性和疏水性。我们的结果还表明,石墨烯和聚乙烯基膦酸酯不仅能够保护棉花免受太阳紫外线的伤害,而且还具有出色的近红外反射率,导电性和电磁屏蔽性能。这些有益的特性使纳米复合材料有望用于多功能应用。

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