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皂苷吸附层的表面流变学。

Surface rheology of saponin adsorption layers.

机构信息

Department of Chemical Engineering, Faculty of Chemistry, Sofia University, 1 J. Bourchier Avenue, 1164 Sofia, Bulgaria.

出版信息

Langmuir. 2011 Oct 18;27(20):12486-98. doi: 10.1021/la202860u. Epub 2011 Sep 21.

Abstract

Extracts of the Quillaja saponaria tree contain natural surfactant molecules called saponins that very efficiently stabilize foams and emulsions. Therefore, such extracts are widely used in several technologies. In addition, saponins have demonstrated nontrivial bioactivity and are currently used as essential ingredients in vaccines, food supplements, and other health products. Previous preliminary studies showed that saponins have some peculiar surface properties, such as a very high surface modulus, that may have an important impact on the mechanisms of foam and emulsion stabilization. Here we present a detailed characterization of the main surface properties of highly purified aqueous extracts of Quillaja saponins. Surface tension isotherms showed that the purified Quillaja saponins behave as nonionic surfactants with a relatively high cmc (0.025 wt %). The saponin adsorption isotherm is described well by the Volmer equation, with an area per molecule of close to 1 nm(2). By comparing this area to the molecular dimensions, we deduce that the hydrophobic triterpenoid rings of the saponin molecules lie parallel to the air-water interface, with the hydrophilic glucoside tails protruding into the aqueous phase. Upon small deformation, the saponin adsorption layers exhibit a very high surface dilatational elasticity (280 ± 30 mN/m), a much lower shear elasticity (26 ± 15 mN/m), and a negligible true dilatational surface viscosity. The measured dilatational elasticity is in very good agreement with the theoretical predictions of the Volmer adsorption model (260 mN/m). The measured characteristic adsorption time of the saponin molecules is 4 to 5 orders of magnitude longer than that predicted theoretically for diffusion-controlled adsorption, which means that the saponin adsorption is barrier-controlled around and above the cmc. The perturbed saponin layers relax toward equilibrium in a complex manner, with several relaxation times, the longest of them being around 3 min. Molecular interpretations of the observed trends are proposed when possible. Surprisingly, in the course of our study we found experimentally that the drop shape analysis method (DSA method) shows a systematically lower surface elasticity, in comparison with the other two methods used: Langmuir trough and capillary pressure tensiometry with spherical drops. The possible reasons for the observed discrepancy are discussed, and the final conclusion is that the DSA method has specific problems and may give incorrect results when applied to study the dynamic properties of systems with high surface elasticity, such as adsorption layers of saponins, lipids, fatty acids, solid particles, and some proteins. The last conclusion is particularly important because the DSA method recently became the preferred method for the characterization of fluid interfaces because of its convenience.

摘要

从皂皮树中提取的物质含有天然表面活性剂分子,称为皂角苷,它能非常有效地稳定泡沫和乳液。因此,此类提取物被广泛应用于多种技术中。此外,皂角苷具有显著的生物活性,目前被用作疫苗、食品补充剂和其他保健品的重要成分。先前的初步研究表明,皂角苷具有一些特殊的表面性质,例如非常高的表面模量,这可能对泡沫和乳液稳定机制有重要影响。本文详细介绍了高度纯化的皂角苷水提物的主要表面性质。表面张力等温线表明,纯化的皂角苷表现为具有相对较高的 cmc(0.025wt%)的非离子表面活性剂。皂角苷吸附等温线很好地符合 Volmer 方程,每个分子的面积接近 1nm(2)。通过将此面积与分子尺寸进行比较,我们推断皂角苷分子的疏水性三萜环平行于气-液界面,亲水性糖苷尾巴突入水溶液相中。在小变形下,皂角苷吸附层表现出非常高的表面扩张弹性(280±30mN/m),较低的剪切弹性(26±15mN/m),以及可忽略的真实扩张表面粘度。测量得到的扩张弹性与 Volmer 吸附模型的理论预测(260mN/m)非常吻合。皂角苷分子的测量特征吸附时间比理论上预测的扩散控制吸附时间长 4 到 5 个数量级,这意味着在 cmc 左右及以上,皂角苷的吸附是受势垒控制的。受扰的皂角苷层以复杂的方式向平衡态松弛,具有多个松弛时间,最长的约为 3 分钟。当可能时,提出了对观察到的趋势的分子解释。令人惊讶的是,在我们的研究过程中,我们实验发现与使用的另外两种方法(Langmuir 槽和球形滴的毛细压力张力计)相比,滴形分析方法(DSA 方法)显示出系统较低的表面弹性。讨论了观察到的差异的可能原因,最终结论是,DSA 方法存在特定问题,并且在应用于研究具有高表面弹性的系统的动态特性时,例如皂角苷、脂质、脂肪酸、固体颗粒和一些蛋白质的吸附层,可能会给出不正确的结果。最后一个结论尤为重要,因为由于其便利性,DSA 方法最近成为了用于流体界面特性表征的首选方法。

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