Laboratoire STLO, UMR1253, INRA, Agrocampus Ouest, F-35000 Rennes, France.
Laboratoire FAST, Univ. Paris-Sud, CNRS, Université Paris-Saclay, F-91405 Orsay, France.
Soft Matter. 2019 Aug 14;15(30):6190-6199. doi: 10.1039/c9sm00373h. Epub 2019 Jul 22.
The evaporation of colloidal solutions is frequently observed in nature and in everyday life. The investigation of the mechanisms taking place during the desiccation of biological fluids is currently a scientific challenge with potential biomedical and industrial applications. In the last few decades, seminal works have been performed mostly on dried droplets of saliva, urine and plasma. However, the full understanding of the drying process in biocolloids is far from being achieved and, notably, the impact of solute properties on the morphological characteristics of the evaporating droplets, such as colloid segregation, skin formation and crack pattern development, is still to be elucidated. For this purpose, the use of model colloidal solutions, whose rheological behavior is more easily deducible, could represent a significant boost. In this work, we compare the drying of droplets of whey proteins and casein micelles, the two main milk protein classes, to that of dispersions of silica particles and polymer-coated silica particles, respectively. The mechanical behavior of such biological colloids and model silica dispersions was investigated through the analysis of crack formation, and the measurements of their mechanical properties using indentation testing. The study reveals numerous analogies between dairy and the corresponding model systems, thus confirming the latter as a plausible powerful tool to highlight the signature of the matter at the molecular scale during the drying process.
胶体溶液的蒸发在自然界和日常生活中经常被观察到。目前,研究生物流体干燥过程中的机制是一个具有潜在生物医学和工业应用的科学挑战。在过去的几十年里,主要对干燥的唾液、尿液和血浆液滴进行了开创性的研究。然而,人们对生物胶体干燥过程的充分理解还远远没有实现,特别是溶质性质对蒸发液滴形态特征的影响,如胶体分离、表皮形成和裂纹模式发展,仍有待阐明。为此,使用流变行为更容易推导的模型胶体溶液可能是一个重大的突破。在这项工作中,我们比较了乳清蛋白和酪蛋白胶束(两种主要的牛奶蛋白类)液滴的干燥情况,以及分别与二氧化硅颗粒和聚合物包覆的二氧化硅颗粒分散体的干燥情况。通过分析裂纹的形成以及使用压痕测试测量它们的力学性能,研究了这些生物胶体和模型二氧化硅分散体的力学行为。研究揭示了乳制品和相应模型系统之间的许多相似之处,从而证实了后者是一种可行的强大工具,可以在干燥过程中突出物质在分子尺度上的特征。