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首页> 外文期刊>Journal of Applied Physics >Particle and surfactant interactions effected polar and dispersive components of interfacial energy in nanocolloids
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Particle and surfactant interactions effected polar and dispersive components of interfacial energy in nanocolloids

机译:颗粒和表面活性剂的相互作用影响了纳米胶体中界面能的极性和分散成分

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摘要

We segregate and report experimentally for the first time the polar and dispersive interfacial energy components of complex nanocolloidal dispersions. In the present study, we introduce a novel inverse protocol for the classical Owens Wendt method to determine the constitutive polar and dispersive elements of surface tension in such multicomponent fluidic systems. The effect of nanoparticles alone and aqueous surfactants alone are studied independently to understand the role of the concentration of the dispersed phase in modulating the constitutive elements of surface energy in fluids. Surfactants are capable of altering the polar component, and the combined particle and surfactant nanodispersions are shown to be effective in modulating the polar and dispersive components of surface tension depending on the relative particle and surfactant concentrations as well as the morphological and electrostatic nature of the dispersed phases. We observe that the combined surfactant and particle colloid exhibits a similar behavior to that of the particle only case; however, the amount of modulation of the polar and dispersive constituents is found to be different from the particle alone case which brings to the forefront the mechanisms through which surfactants modulate interfacial energies in complex fluids. Accordingly, we are able to show that the observations can be merged into a form of quasi-universal trend in the trends of polar and dispersive components in spite of the non-universal character in the wetting behavior of the fluids. We analyze the different factors affecting the polar and dispersive interactions in such complex colloids, and the physics behind such complex interactions has been explained by appealing to the classical dispersion theories by London, Debye, and Keesom as well as by Derjaguin-Landau-Verwey-Overbeek theory. The findings shed light on the nature of wetting behavior of such complex fluids and help in predicting the wettability and the degree of interfacial interaction with a substrate in such multicomponent nanocolloidal systems.
机译:我们首次分离并实验性地报告了复杂纳米胶体分散体的极性和分散界面能组分。在本研究中,我们为经典的Owens Wendt方法引入了一种新颖的逆协议,以确定这种多组分流体系统中表面张力的本构极性和分散元素。单独研究了纳米颗粒和水性表面活性剂的作用,以了解分散相浓度在调节流体中表面能的组成元素中的作用。表面活性剂能够改变极性成分,并且颗粒和表面活性剂的纳米分散体组合物可有效调节表面张力的极性和分散性成分,具体取决于相对颗粒和表面活性剂浓度以及分散体的形态和静电性质阶段。我们观察到表面活性剂和颗粒胶体的结合表现出与仅颗粒情况相似的行为。但是,发现极性和分散成分的调节量不同于单独使用颗粒的情况,后者使表面活性剂通过其调节复杂流体中界面能的机理成为最前沿。因此,我们能够证明,尽管流体的润湿行为具有非普遍性,但在极性和分散成分的趋势中,观测值仍可以合并为准普遍性趋势。我们分析了影响这种复杂胶体中极性和色散相互作用的不同因素,并且通过引用伦敦,德比和基森以及德哈金-兰道-韦威-(Derjaguin-Landau-Verwey-怪癖理论。该发现揭示了这种复杂流体的润湿行为的性质,并有助于预测在这种多组分纳米胶体体系中的润湿性和与基材的界面相互作用的程度。

著录项

  • 来源
    《Journal of Applied Physics 》 |2017年第5期| 054301.1-054301.13| 共13页
  • 作者单位

    Department of Mechanical Engineering, Indian Institute of Technology Madras, Chennai 600036, India;

    Department of Mechanical Engineering, Indian Institute of Technology Madras, Chennai 600036, India;

    Department of Mechanical Engineering, Indian Institute of Technology Ropar, Rupnagar 140001, India;

    Department of Mechanical Engineering, Indian Institute of Technology Ropar, Rupnagar 140001, India;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
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  • 正文语种 eng
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