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Interfacial and surface tensions of toluene/water and air/water systems with nonionic surfactants Tween 20 and Tween 80

机译:含非离子表面活性剂Tween 20和Tween 80的甲苯/水和空气/水系统的界面张力和表面张力

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Interfacial and surface tensions were measured at 25 degrees C for the toluene/water and air/water systems with dissolved nonionic surfactants Tween 20 or Tween 80. Dynamic surface/interfacial tensions were measured with the use of the drop volume method and were successfully fitted with the Hua and Rosen equation with characteristic times r. Static surface/interfacial tensions were determined from extrapolation of the dynamic data to t -> infinity on sigma or gamma versus t-(1/2) graphs. Obtained results were verified by measurements performed with the use of the Wilhelmy plate method. Critical micelle concentrations for considered surfactants were determined as well as maximum surface excess, minimum surface area per adsorbed molecule and diffusion coefficients were calculated for both fluid/fluid systems. The Frumkin adsorption isotherm was assumed and the Frumkin equation of state fits the experimental static surface/interfacial tensions well. Although the difference between HLB numbers of studied Tweens is small, it is sufficient to observe a different surface activity of surfactants at the air/water surface and toluene/water interface. Performed measurements and analysis give a deeper insight into the surface effects exerted by the nonionic surfactants such as Tween 20 and Tween 80, which in an agitated liquid/liquid dispersions are a source of the additional disruptive stresses generation. (C) 2016 Elsevier B.V. All rights reserved.
机译:使用溶解的非离子表面活性剂Tween 20或Tween 80在25°C下测量甲苯/水和空气/水系统的界面张力和表面张力。使用滴体积法测量动态表面张力/界面张力,并成功地将其与具有特征时间r的Hua和Rosen方程。静态表面/界面张力是通过将动态数据外推到sigma或gamma与t-(1/2)图上的t->无穷大确定的。通过使用Wilhelmy平板法进行的测量来验证获得的结果。确定了所考虑的表面活性剂的临界胶束浓度,以及最大表面积,每个吸附分子的最小表面积,并计算了流体/流体系统的扩散系数。假定Frumkin吸附等温线,并且Frumkin状态方程与实验静态表面/界面张力非常吻合。尽管所研究的Tweens的HLB值之间的差异很小,但足以观察到表面活性剂在空气/水表面和甲苯/水界面的表面活性不同。进行的测量和分析可以更深入地了解非离子表面活性剂(例如Tween 20和Tween 80)施加的表面效应,在搅拌的液/液分散液中,它们是产生额外破坏性应力的来源。 (C)2016 Elsevier B.V.保留所有权利。

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