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Influence of concentration and ionic strength on the adsorption kinetics of gelatin at the air/water interface

机译:浓度和离子强度对明胶在空气/水界面吸附动力学的影响

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The adsorption kinetics of gelatin to the air/water interface is still not fully understood. We investigated two samples of gelatin having different gel strength (65 Bloom and 280 Bloom), named, respectively gelatin 65B and 280B. The gelatin samples in solution were characterised by viscosimetric methods. We evidence a chain expansion of gelatin upon dilution due to the polyelectrolyte effect. The measurement of the intrinsic viscosity in water gave values of 22 mL/g for the sample 65B and 70 mL/g for the sample 280B. Although gelatin is a highly polymolecular polymer containing branched chains, the normalisation of the concentration by the intrinsic viscosity allowed the construction of a master curve of viscosity, giving the reduced critical overlap concentrations c* similar to 0.6 and c** similar to 5. All concentrations of the gelatin solutions used for the determination of the adsorption behaviour were within the range of the dilute regime. The analysis of the adsorption behaviour leads us to the hypothesis that there are two different phenomena: first, a step governed by diffusion to the interface which lasts until full coverage of the interfacial film. The length of this induction period seemed to be dependent on the gelatin chain length, with larger chains taking more time. Second, the adsorption of the chains to the air/water interface leads to the formation of an encumbered subsurface layer which opposes steric hindrance to newly arriving chains. This causes a continuous slow down of the rate of surface pressure increase, which was linear on the logarithmic time scale and showed a slope of -1. The adsorption kinetics was independent of the salt concentration of the solvent and of the gelatin chain size measured by the intrinsic viscosity. The gelatin sample 65B shows furthermore higher equilibrium surface pressures at high bulk concentrations (>0.01 wt%) than sample 280B, while the contrary was observed at small concentrations.
机译:明胶对空气/水界面的吸附动力学仍不完全清楚。我们研究了具有不同凝胶强度(65 Bloom和280 Bloom)的两个明胶样品,分别命名为明胶65B和280B。通过粘度法对溶液中的明胶样品进行表征。我们证明由于聚电解质的作用,明胶在稀释后的链膨胀。水中特性粘度的测量对于样品65B为22mL / g,对于样品280B为70mL / g。尽管明胶是包含支链的高度高分子聚合物,但通过特性粘度对浓度进行归一化可以构建粘度主曲线,从而使临界重叠浓度c *降低至类似于0.6,c **降低至类似于5。所有用于确定吸附行为的明胶溶液的浓度在稀释方案的范围内。对吸附行为的分析使我们得出以下假设:存在两种不同的现象:首先,由扩散到界面控制的步骤一直持续到界面膜完全覆盖为止。该诱导期的长度似乎取决于明胶链的长度,较大的链花费更多的时间。第二,链对空气/水界面的吸附导致形成阻碍的地下层,该阻碍的层对新到达的链形成空间位阻。这导致表面压力增加速率的持续减慢,这在对数时间刻度上呈线性,并且显示为-1的斜率。吸附动力学与溶剂的盐浓度和通过特性粘度测量的明胶链大小无关。明胶样品65B在高堆积浓度(> 0.01 wt%)下比样品280B显示出更高的平衡表面压力,而在小浓度下则观察到相反。

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