Department of Chemical and Biomolecular Engineering, University of Pennsylvania, Philadelphia, PA 19104, USA.
Department of Chemical Engineering, University of Rhode Island, Kingston, RI 02881, USA.
Soft Matter. 2021 May 5;17(17):4517-4524. doi: 10.1039/d1sm00225b.
Microcapsules are commonly used in applications ranging from therapeutics to personal care products due to their ability to deliver encapsulated species through their porous shells. Here, we demonstrate a simple and scalable approach to fabricate microcapsules with porous shells by interfacial complexation of cellulose nanofibrils and oleylamine, and investigate the rheological properties of suspensions of the resulting microcapsules. The suspensions of neat capsules are viscous liquids whose viscosity increases with volume fraction according to a modified Kreiger-Dougherty relation with a maximum packing fraction of 0.74 and an intrinsic viscosity of 4.1. When polyacrylic acid (PAA) is added to the internal phase of the microcapsules, however, the suspensions become elastic and display yield stresses with power-law dependencies on capsule volume fraction and PAA concentration. The elasticity appears to originate from associative microcapsule interactions induced by PAA that is contained within and incorporated into the microcapsule shell. These results demonstrate that it is possible to tune the rheological properties of microcapsule suspensions by changing only the composition of the internal phase, thereby providing a novel method to tailor complex fluid rheology.
微胶囊由于其能够通过多孔壳传递被包裹的物质,因此被广泛应用于治疗学和个人护理产品等领域。在这里,我们展示了一种简单且可扩展的方法,通过纤维素纳米纤维和油胺的界面络合来制造具有多孔壳的微胶囊,并研究了所得微胶囊悬浮液的流变性质。纯胶囊的悬浮液是粘性液体,其粘度根据修正的 Kreiger-Dougherty 关系随体积分数的增加而增加,最大堆积分数为 0.74,固有粘度为 4.1。然而,当将聚丙烯酸 (PAA) 添加到微胶囊的内相时,悬浮液会变成弹性体,并显示出与胶囊体积分数和 PAA 浓度呈幂律关系的屈服应力。弹性似乎源于 PAA 诱导的缔合微胶囊相互作用,PAA 包含在内相和微胶囊壳中。这些结果表明,通过仅改变内相的组成,可以调节微胶囊悬浮液的流变性质,从而提供了一种定制复杂流体流变性质的新方法。