Department of Applied Physics, University of Granada, 18071 Granada, Spain.
Faculty of Engineering Sciences and Industries, Universidad UTE, 170129 Quito, Ecuador.
Philos Trans A Math Phys Eng Sci. 2020 May 15;378(2171):20190254. doi: 10.1098/rsta.2019.0254. Epub 2020 Apr 13.
Even in the absence of cross-linking, at large enough concentration, long polymer strands have a strong influence on the rheology of aqueous systems. In this work, we show that solutions of medium molecular weight (120 000-190 000 g mol) alginate polymer retained a liquid-like behaviour even for concentrations as large as 20% w/v. On the contrary, solutions of alginate polymer of larger (and also polydisperse) molecular weight (up to 600 000 g mol) presented a gel-like behaviour already at concentrations of 7% w/v. We dispersed micrometre-sized iron particles at a concentration of 5% v/v in these solutions, which resulted in either stable magnetic fluids or gels, depending on the type of alginate polymer employed (medium or large molecular weight, respectively). These magneto-polymer composites presented a shear-thinning behaviour that allowed injection through a syringe and recovery of the original properties afterwards. More interestingly, application of a magnetic field resulted in the formation of particle clusters elongated along the field direction. The presence of these clusters intensely affected the rheology of the systems, allowing a reversible control of their stiffness. We finally developed theoretical modelling for the prediction of the magnetic-sensitive rheological properties of these magneto-polymer colloids. This article is part of the theme issue 'Patterns in soft and biological matters'.
即使没有交联,在足够大的浓度下,长链聚合物对水基体系的流变学有很强的影响。在这项工作中,我们表明,中等分子量(120000-190000g/mol)的海藻酸钠聚合物溶液即使在 20%w/v 的浓度下仍保持液态行为。相反,分子量更大(也更分散)的海藻酸钠聚合物(高达 600000g/mol)的溶液在 7%w/v 的浓度下就呈现出凝胶状行为。我们将微米级大小的铁颗粒以 5%v/v 的浓度分散在这些溶液中,这导致了稳定的磁流体或凝胶,这取决于所使用的海藻酸钠聚合物的类型(分别为中等或大分子量)。这些磁聚合物复合材料表现出剪切变稀的行为,允许通过注射器注射,并在之后恢复原来的特性。更有趣的是,施加磁场导致颗粒簇沿着磁场方向伸长形成。这些簇的存在强烈影响了系统的流变学性质,允许对其刚度进行可逆控制。最后,我们为这些磁聚合物胶体的磁敏感流变特性的预测开发了理论模型。本文是“软物质和生物物质中的模式”主题特刊的一部分。