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Functionalizing graphene with titanate coupling agents as reinforcement for one-component waterborne poly(urethane-acrylate) anticorrosion coatings

机译:用钛酸酯偶联剂官能化石墨烯作为一种组分水性聚(氨基甲酸酯 - 丙烯酸酯)防腐涂料的增强剂

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摘要

Achieving a uniform dispersion of reduced graphene oxide (RGO) nanosheets in waterborne polymer matrix remains a challenge. Here, we significantly improved the dispersion stability of RGO in a polymer matrix through functionalizing RGO with titanate coupling agent of different dendritic structure. Titanate coupling agents of two branched dioctylpyrophosphate (T2) and three branched dioctylpyrophosphate (T3) were used. Rather than simply blending graphene with polymer matrix, functionalized graphene (T2-RGO or T3-RGO) was introduced into the reaction system with monomers to participate in the polymerization; resulting in improved compatibility and interaction between the graphene and polymer, especially for T3-RGO. One-component waterborne poly (urethane-acrylate) nanocomposite coatings (WPUA/T2G or WPUA/T3G) were then obtained. The particle size of WPUA/T3G colloidal particle size is much smaller than that of WPUA/T2G, the colloidal stability was also increased with the incorporation of T3-RGO. Compared with pure WPUA, the tensile strength of WPUA/T3G nanocomposite increased from 17.78 MPa to 40.01 MPa, and the elongation at break increased from 249% to 424%. The tensile strength and elongation at break of WPUA/T2G were 32.01 MPa and 366%, which were inferior to that of WPUA/T3G. Moreover, in comparison with pure WPUA, the impedance modulus of WPUA/T3G increased from 1.12x10(5) Omega.cm(2) to 1.15x10(8) Omega.cm(2), the coating resistance of WPUA/T3G increased from 8.41x10(4) Omega.cm(2) to 1.39x10(8) Omega.cm(2), which was also much higher than the impedance modulus (6.93x10(6) Omega.cm(2)) and coating resistance (7.31x10(6) Omega.cm(2)) of WPUA/T2G. WPUA/T3G nanocomposite coating exhibited excellent long-term corrosion resistance, being superior to the previously reported performance of solventborne polyurethane/graphene composite.
机译:在水性聚合物基质中实现均匀的石墨烯(RGO)纳米片的均匀分散仍然是一个挑战。这里,我们通过用不同树突结构的钛酸钛偶联剂官能化RGO来显着改善了RGO在聚合物基质中的分散稳定性。使用两种支链二辛酰磷酸酯(T2)和三分支化二辛基偶磷酸酯(T3)的钛酸盐偶联剂。而不是用聚合物基质的简单混合石墨烯,将官能化石墨烯(T2-RGO或T3-RGO)引入反应体系中以参与聚合;导致石墨烯和聚合物之间的相容性和相互作用,特别是对于T3-RGO之间的相互作用。然后获得单组分水性聚(氨基甲酸酯 - 丙烯酸酯)纳米复合涂层(WPUA / T2G或WPUA / T3G)。 WPUA / T3G胶体粒度的粒度远小于WPUA / T2G的粒度,胶体稳定性也随着T3-RGO的掺入而增加。与纯WPUA相比,WPUA / T3G纳米复合材料的拉伸强度从17.78MPa增加到40.01MPa,并且断裂伸长率从249%增加到424%。 WPUA / T2G断裂的拉伸强度和伸长率为32.01MPa和366%,其差别为WPUA / T3G。此外,与纯WPUA相比,WPUA / T3G的阻抗模量从1.12x10(5)ωcm(2)增加到1.15×10(8)ωcm(2),WPUA / T3g的涂层电量增加8.41x10(4)OMEGA.cm(2)至1.39x10(8)ωcm(2),也远远高于阻抗模量(6.93x10(6)ωcm(2))和涂层电阻( 7.31X10(6)WPUA / T2G的OMEGA.cm(2))。 WPUA / T3G纳米复合涂层具有优异的长期耐腐蚀性,优于先前报道的溶剂型聚氨酯/石墨烯复合材料的性能。

著录项

  • 来源
    《Chemical engineering journal》 |2019年第2019期|共13页
  • 作者单位

    Shaanxi Univ Sci &

    Technol Shaanxi Key Lab Chem Addit Ind Xian 710021 Shaanxi Peoples R China;

    Shaanxi Univ Sci &

    Technol Shaanxi Key Lab Chem Addit Ind Xian 710021 Shaanxi Peoples R China;

    Shaanxi Univ Sci &

    Technol Shaanxi Key Lab Chem Addit Ind Xian 710021 Shaanxi Peoples R China;

    Univ Wollongong ARC Ctr Excellence Electromat Sci Intelligent Polymer Res Inst AIIM Facil Wollongong NSW 2500 Australia;

    Shaanxi Univ Sci &

    Technol Shaanxi Key Lab Chem Addit Ind Xian 710021 Shaanxi Peoples R China;

    Shaanxi Univ Sci &

    Technol Shaanxi Key Lab Chem Addit Ind Xian 710021 Shaanxi Peoples R China;

    Shaanxi Univ Sci &

    Technol Shaanxi Key Lab Chem Addit Ind Xian 710021 Shaanxi Peoples R China;

    Shaanxi Univ Sci &

    Technol Shaanxi Key Lab Chem Addit Ind Xian 710021 Shaanxi Peoples R China;

    Shaanxi Univ Sci &

    Technol Shaanxi Key Lab Chem Addit Ind Xian 710021 Shaanxi Peoples R China;

    Univ Wollongong ARC Ctr Excellence Electromat Sci Intelligent Polymer Res Inst AIIM Facil Wollongong NSW 2500 Australia;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学工业;
  • 关键词

    Titanate coupling agent; Graphene; Polyurethane; Corrosion; Coating;

    机译:钛酸钛偶联剂;石墨烯;聚氨酯;腐蚀;涂层;

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