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首页> 外文期刊>CERAMICS INTERNATIONAL >Effect of addition of surface modified nanosilica into silica-zirconia hybrid sol-gel matrix
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Effect of addition of surface modified nanosilica into silica-zirconia hybrid sol-gel matrix

机译:将表面改性的纳米二氧化硅添加到二氧化硅-氧化锆杂化溶胶-凝胶基质中的作用

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摘要

An organic-inorganic hybrid sol (MZ) comprising a methacrylate functionalized silane matrix (M) and zirconium-n-propoxide (Z) was prepared using sol-gel technique. Two methodologies were adopted to modify the hybrid sol for generating nanocomposite coatings viz., (a) addition of acrylic surface modified silica nanoparticles (N) of diameter ~20 nm to the sol to enhance their compatibility with the hybrid sol-gel matrix and (b) in-situ formation of a three dimensional silica network by addition of tetraethoxy silane (T) to the sol MZ. In the first methodology, the sols were prepared with six different weight ratios of the nanoparticles to the sol, i.e. 0, 0.01, 0.05, 0.1, 0.25 and 1 which were labelled as MZ+Nx where x=0, 1, 2, 3, 4 and 5 respectively. The prepared sols were dip coated on 100 mm x 100 mm polycarbonate substrates followed by thermal curing at 130 °C. The coatings were characterized for their mechanical properties like pencil scratch hardness, scratch resistance using scratch tester, nanoindentation hardness, and abrasion resistance as well as visible light transmittance. FT-IR studies were also carried out on heat-treated gels derived from the sols. A maximum pencil scratch hardness of 3H was obtained for the MZ+T coatings and these coatings withstood a critical load of 4.3 + 0.7 N before failure during scratch test. The maximum nanoindentation hardness of 3.8 + 0.01 GPa was obtained for the MZ+N5 coatings. The abrasion resistance of MZ+T coatings was higher when compared to MZ+N0 and MZ+N5 coatings. The scratch and nanoindentation hardness were seen to be better for an in-situ formed -Si-O-Si- network in the hybrid sol when compared to those obtained from coatings generated by external addition of acrylic surface modified silica nanoparticles. The difference in properties was attributed to the level of interaction between the nanoparticles and hybrid sol-gel matrix.
机译:使用溶胶-凝胶技术制备了包含甲基丙烯酸酯官能化的硅烷基质(M)和正丙醇锆(Z)的有机-无机杂化溶胶(MZ)。采用了两种方法来修饰用于生成纳米复合涂料的杂化溶胶,即(a)向溶胶中添加直径约20 nm的丙烯酸表面改性二氧化硅纳米粒子(N)以增强其与杂化溶胶-凝胶基质的相容性和( b)通过向溶胶MZ中添加四乙氧基硅烷(T)原位形成三维二氧化硅网络。在第一种方法中,制备的溶胶具有六种不同的纳米颗粒与溶胶的重量比,即0、0.01、0.05、0.1、0.25和1,分别标记为MZ + Nx,其中x = 0、1、2、3 ,分别为4和5。将制备的溶胶浸涂在100 mm x 100 mm聚碳酸酯基材上,然后在130°C下热固化。对涂层的机械性能进行了表征,例如铅笔的划痕硬度,使用划痕测试仪的划痕强度,纳米压痕硬度,耐磨性以及可见光透射率。还对衍生自溶胶的热处理凝胶进行了FT-IR研究。 MZ + T涂层的最大铅笔划痕硬度为3H,在划痕试验失败之前,这些涂层承受了4.3 + 0.7 N的临界载荷。 MZ + N5涂层的最大纳米压痕硬度为3.8 + 0.01 GPa。与MZ + N0和MZ + N5涂层相比,MZ + T涂层的耐磨性更高。与从外部添加丙烯酸表面改性的二氧化硅纳米粒子而得的涂料相比,对于杂化溶胶中原位形成的-Si-O-Si-网络而言,其划痕和纳米压痕硬度更好。性质的差异归因于纳米颗粒和杂化溶胶-凝胶基质之间的相互作用水平。

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