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Investigation of the role of hydrophilic chain length in amphiphilic perfluoropolyether/ poly(ethylene glycol) networks: towards high-performance antifouling coatings

机译:亲水链长在两亲性全氟聚醚/聚(乙二醇)网络中的作用研究:朝向高性能防污涂料

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摘要

The facile preparation of amphiphilic network coatings having a hydrophobic dimethacryloxy-functionalized perfluoropolyether (PFPE-DMA; M_w = 1500 g mol~(-1)) crosslinked with hydrophilic monomethacryloxy functio-nalized poly(ethylene glycol) macromonomers (PEG-MA; M_w = 300, 475, 1100 g mol~(-1)), intended as non-toxic high-performance marine coatings exhibiting antifouling characteristics is demonstrated. The PFPE-DMA was found to be miscible with the PEG-MA. Photo-cured blends of these materials containing 10 wt% of PEG-MA oligomers did not swell significantly in water. PFPE-DMA crosslinked with the highest molecular weight PEG oligomer (ie PEG1100) deterred settlement (attachment) of algal cells and cypris larvae of barnacles compared to a PFPE control coating. Dynamic mechanical analysis of these networks revealed a flexible material. Preferential segregation of the PEG segments at the polymer/air interface resulted in enhanced antifouling performance. The cured amphiphilic PFPE/PEG films showed decreased advancing and receding contact angles with increasing PEG chain length. In particular, the PFPE/PEG 1100 network had a much lower advancing contact angle than static contact angle, suggesting that the PEG 1100 segments diffuse to the polymer/water interface quickly. The preferential interfacial aggregation of the larger PEG segments enables the coating surface to have a substantially enhanced resistance to settlement of spores of the green seaweed Ulva, cells of the diatom Navicula and cypris larvae of the barnacle Balanus amphitrite as well as low adhesion of sporelings (young plants) of Ulva, adhesion being lower than to a polydimethyl elastomer, Silastic T2.
机译:容易制备具有疏水性二甲基丙烯酰氧基官能化全氟聚醚(PFPE-DMA; M_w = 1500 g mol〜(-1))与亲水性单甲基丙烯酰氧基官能化的聚(乙二醇)大分子单体(PEG-MA; M_w =证明了300,475,1100 g mol〜(-1))用作具有防污特性的无毒高性能海洋涂料。发现PFPE-DMA可与PEG-MA混溶。这些包含10 wt%PEG-MA低聚物的材料的光固化共混物在水中没有明显溶胀。与PFPE对照涂层相比,与最高分子量的PEG低聚物(即PEG1100)交联的PFPE-DMA阻止了藻类细胞和藤壶的幼体的沉降(附着)。这些网络的动态力学分析显示出一种柔性材料。 PEG链段在聚合物/空气界面的优先分离导致增强的防污性能。固化的两亲PFPE / PEG膜显示出随着PEG链长度的增加而减小的前进和后退接触角。特别是,PFPE / PEG 1100网络的前进接触角比静态接触角低得多,这表明PEG 1100链段迅速扩散到聚合物/水界面。较大的PEG片段的优先界面聚集使涂层表面对绿色海藻Ulva的孢子,硅藻Navicula的细胞和藤壶Balanus辉石藻的幼虫的沉降具有显着增强的抵抗力,并且孢子的附着力低( (Ulva)的幼小植物,附着力低于聚二甲基弹性体Silastic T2。

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  • 来源
    《Biofouling》 |2011年第10期|p.1139-1150|共12页
  • 作者单位

    Department of Chemistry, University of North Carolina at Chapel Hill, Chapel Hill, NC 27514, USA;

    Department of Chemistry, University of Minnesota, Minneapolis, MN 55455, USA;

    School of Biosciences, The University of Birmingham, Birmingham, B15 2TT, UK;

    Biological Sciences Department, Cal Poly San Luis Obispo, USA, San Luis Obispo, CA 93407, USA;

    School of Biosciences, The University of Birmingham, Birmingham, B15 2TT, UK;

    Department of Chemistry, University of North Carolina at Chapel Hill, Chapel Hill, NC 27514, USA;

    School of Biosciences, The University of Birmingham, Birmingham, B15 2TT, UK;

    School of Biosciences, The University of Birmingham, Birmingham, B15 2TT, UK;

    Biological Sciences Department, Cal Poly San Luis Obispo, USA, San Luis Obispo, CA 93407, USA;

    Department of Chemistry, University of Minnesota, Minneapolis, MN 55455, USA;

    Department of Chemistry, University of North Carolina at Chapel Hill, Chapel Hill, NC 27514, USA,Department of Chemical & Biomolecular Engineering, North Carolina State University, Raleigh, NC, USA;

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

    amphiphilic coating; adhesion; antifouling; fouling-release; perfluoropolyether;

    机译:两亲涂层附着力防污污垢释放;全氟聚醚;

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