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Surface characterization of glass fibers made from silicate waste: Zeta-potential and contact angle measurements

机译:由硅酸盐废料制成的玻璃纤维的表面表征:ζ电位和接触角测量

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摘要

The surface properties of three glass fibers made from silicate waste and of various commercial glass fibers have been characterized by zeta (ζ)-potential and contact angle measurements. ζ-Potential measurements indicate that the formation of the electrochemical double layer is clearly affected by the type and amount of network former and network modifier oxides in the glass structure. A high negative ζ-potential is measured for fibers containing large amounts of network former oxides. The amount and type of network modifier cations leaching from the glass and adsorbing in the electrochemical double layer causes the negative ζ-potential to decrease. pH-depending ζ-potentials show that the Brønsted acidic surface character predominates. The ratio of network former to network modifier oxides affect the course of the ζ = f(pH) function and, therefore, the acidity of the fiber surfaces. Contact angles of glass fibers against water and diiodomethane have been measured in order to estimate the fiber surface tensions. All investigated glass fibers are rather hydrophobic. The surface tension of the fibers is similar to polymer. The results of the present study are relevant for the use of such glass fibers as reinforcement for polymer matrix composites.
机译:三种由硅酸盐废料制成的玻璃纤维和各种市售玻璃纤维的表面性质已通过ζ(ζ)电位和接触角测量进行了表征。 ζ电势测量表明,电化学双层的形成明显受到玻璃结构中网络形成剂和网络改性剂氧化物的类型和数量的影响。对于包含大量网状形成剂氧化物的纤维,可测出高的负ζ电位。从玻璃中浸出并吸附在电化学双层中的网络改性剂阳离子的数量和类型导致负ζ电位降低。 pH依赖的ζ电位表明,布朗斯台德酸性表面特征占主导地位。网络形成剂与网络改性剂氧化物的比例影响ζ= f(pH)函数的过程,因此影响纤维表面的酸度。为了估计纤维表面张力,已经测量了玻璃纤维与水和二碘甲烷的接触角。所有研究的玻璃纤维都是疏水的。纤维的表面张力类似于聚合物。本研究的结果与使用这种玻璃纤维作为聚合物基复合材料的增强材料有关。

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  • 来源
    《Journal of Materials Science》 |2004年第2期|401-412|共12页
  • 作者单位

    Department of Chemical Engineering and Chemical Technology Imperial College London;

    Department of Materials Imperial College London;

    Institut für Chemie Fachgebiet Makromolekulare Chemie Technische Universität Berlin;

    Fakultät für Maschinenbau Fachgebiet Glas- und Keramiktechnologie Technische Universität Ilmenau;

    Fakultät für Maschinenbau Fachgebiet Glas- und Keramiktechnologie Technische Universität Ilmenau;

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  • 正文语种 eng
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