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具有均匀薄壳的力响应微胶囊。

Mechano-responsive microcapsules with uniform thin shells.

机构信息

Soft Materials Laboratory, Institute of Materials, École Polytechnique Fédérale de Lausanne, 1015 Lausanne, Switzerland.

出版信息

Soft Matter. 2019 Feb 6;15(6):1290-1296. doi: 10.1039/c8sm02047g.

DOI:10.1039/c8sm02047g
PMID:30468441
Abstract

Capsules often prolong the shelf-life of active ingredients, such as many types of drugs, food additives, or cosmetic substances, because they delay oxidation of these substances or prevent their reactions with molecules contained in the surrounding. If capsules are appropriately designed, they can offer an additional benefit: they allow close control over the timing and location of the release of active ingredients. To take advantage of these features, capsules must possess shells whose thickness and composition are well-defined. However, the shell thickness of capsules often varies considerably even within a single capsule, thereby hampering good control over the release kinetics of encapsulants. These variations can be reduced, and hence the degree of control over the release kinetics increased, if shells are made thin. Unfortunately, the controlled fabrication of mechanically stable microcapsules with well-defined sub-μm thick shells is difficult. Here, we introduce a method to fabricate capsules with uniform semi-permeable shells with a thickness as low as 400 nm. This is achieved using water-oil-water double emulsions with 800 nm thick shells as templates to fabricate capsules with uniform 400 nm thin shells. These shells occupy less than 2% of the capsule volume, thereby minimizing their footprint. Despite their thin shells, these capsules are mechanically robust: they withstand pressures up to 1.3 MPa without deformation and remain intact if exposed to pressures up to 2.75 MPa. Moreover, while they are permeable towards water, they retain low molecular weight encapsulants even if dried and re-dispersed. The thin shells of the capsules open up new possibilities of their use to functionalize materials with at least one dimension that is small, such as coatings, where thick shells introduce defects, or as building blocks of new types of functional materials.

摘要

胶囊通常可以延长活性成分的保质期,例如许多类型的药物、食品添加剂或化妆品物质,因为它们可以延缓这些物质的氧化或防止它们与周围环境中含有的分子发生反应。如果胶囊设计得当,它们还可以提供额外的好处:它们可以精确控制活性成分的释放时间和位置。为了利用这些特性,胶囊必须具有壳,其厚度和组成都必须得到很好的定义。然而,即使在单个胶囊内,胶囊的壳厚度也常常变化很大,从而妨碍了对包封剂释放动力学的良好控制。如果壳变薄,这些变化可以减少,从而可以提高对释放动力学的控制程度。不幸的是,很难用机械稳定的方法来制造具有定义明确的亚微米厚壳的微胶囊。在这里,我们介绍了一种制造具有均匀半渗透壳的胶囊的方法,其厚度低至 400nm。这是通过使用具有 800nm 厚壳的油水双乳液作为模板来实现的,从而可以制造出具有均匀 400nm 薄壳的胶囊。这些壳仅占胶囊体积的不到 2%,从而最小化了它们的占用空间。尽管这些胶囊的壳很薄,但它们具有机械强度:它们可以承受高达 1.3MPa 的压力而不变形,如果暴露于高达 2.75MPa 的压力下也不会破裂。此外,尽管它们对水是可渗透的,但即使在干燥并重新分散后,它们也能保留低分子量的包封剂。这些胶囊的薄壳为其功能化提供了新的可能性,其功能化材料的至少一个维度较小,例如涂层,其中厚壳会引入缺陷,或者作为新型功能材料的构建块。

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