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首页> 外文期刊>New Journal of Chemistry >Organophilic graphene nanosheets as a promising nanofiller for bio-based polyurethane nanocomposites: investigation of the thermal, barrier and mechanical properties
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Organophilic graphene nanosheets as a promising nanofiller for bio-based polyurethane nanocomposites: investigation of the thermal, barrier and mechanical properties

机译:有机石墨烯纳米片作为具有生物基聚氨酯纳米复合材料的有前途的纳米填充物:对热,屏障和机械性能的研究

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摘要

The present study focuses on the design of new nanocomposite films using bio-based thermoplastic polyurethane (TPU) as a polymer matrix and long chain amine functionalized reduced graphene oxide (G-ODA) as a nanofiller. G-ODA was successfully prepared via chemical grafting of octadecylamine and fully characterized by various physicochemical techniques. Dispersion experiments showed that the synthesized organophilic graphene could be easily dispersed in several organic solvents and forms a stable and homogeneous colloidal suspension. G-ODA was incorporated at different loadings (0.1, 0.3, 0.5 and 0.7 wt%) into the polyurethane (PU) matrix to prepare uniformly dispersed G-ODA based PU nanocomposites. The designated nanocomposites resulted in achieving enhanced thermal stabilities as well as excellent mechanical properties compared to the neat PU. Mechanical performance studies show a tremendous enhancement of the tensile strength (2.08 to 5.48 MPa) along with an increment of the tensile modulus (37.19 to 122.83 MPa), the elongation at break (9.67 to 28.91%) and the toughness (13.75 to 124.44 MJ m(-3)). In addition, the designed nanocomposites demonstrate limited moisture and water uptake, reduced permeability and enhanced surface hydrophobicity.
机译:本研究专注于使用基于生物基热塑性聚氨酯(TPU)作为聚合物基质和长链胺官能化的石墨烯氧化物(G-ODA)作为纳米氧化物的新型纳米复合膜的设计。通过八二烷基胺的化学接枝成功制备G-ODA,并通过各种物理化学技术完全表征。分散实验表明,合成的有机石墨烯可以容易地分散在几种有机溶剂中并形成稳定且均匀的胶体悬浮液。 G-ODA以不同的载荷(0.1,0.3,0.5和0.7wt%)掺入聚氨酯(PU)基质中以制备均匀分散的G-ODA基PU纳米复合材料。与整洁PU相比,指定的纳米复合材料导致达到增强的热稳定性以及优异的机械性能。机械性能研究表明,抗拉强度(2.08至5.48MPa)的巨大增强以及拉伸模量的增量(37.19至122.83MPa),断裂伸长(9.67至28.91%)和韧性(13.75至124.44 mJ m(-3))。此外,所设计的纳米复合材料表现出有限的水分和水吸收,降低渗透性和增强的表面疏水性。

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  • 来源
    《New Journal of Chemistry》 |2019年第39期|共14页
  • 作者单位

    Univ Hassan 2 Lab Mat Catalyse &

    Valorisat Ressources Nat URAC 24 Fac Sci &

    Tech BP 146 Casablanca 20650 Morocco;

    MAScIR Fdn VARENA Ctr Rabat Design Rue Mohamed El Jazouli Rabat 10100 Morocco;

    MAScIR Fdn VARENA Ctr Rabat Design Rue Mohamed El Jazouli Rabat 10100 Morocco;

    MAScIR Fdn VARENA Ctr Rabat Design Rue Mohamed El Jazouli Rabat 10100 Morocco;

    Univ Hassan 2 Lab Mat Catalyse &

    Valorisat Ressources Nat URAC 24 Fac Sci &

    Tech BP 146 Casablanca 20650 Morocco;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
  • 关键词

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