Multicore silica microcapsules containing α-tocopherol for potential consumer product applications

IF 4.7 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY Materials Advances Pub Date : 2025-01-23 DOI:10.1039/D4MA00981A
Mohammed Al-Sharabi, Benjamin T. Lobel, Daniele Baiocco, Olivier J. Cayre, Zhibing Zhang and Alexander F. Routh
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Abstract

Microencapsulation is an advanced technique for protecting and enhancing the processing, delivery and performance of sensitive active ingredients, such as lipid-soluble vitamins. The fabrication of microcapsules containing such materials in an efficient, cost-effective and environmentally-friendly manner remains an ongoing challenge. Multicore silica microcapsules containing α-tocopherol in their cores were fabricated through salt-induced destabilisation and subsequent agglomeration of silica nanoparticles in an oil-in-water-in-oil double emulsion template at room temperature. The primary emulsion was prepared using three different concentrations (5, 10 and 15 wt%) of the internal oil phase, i.e. a mixture of α-tocopherol and sunflower oil. The external oil phase for the secondary emulsion consisted of different concentrations of Span 80 (0, 0.5 and 1 wt%) in sunflower oil. The capsule core size does not change during storage, confirming the stability of cores within the microcapsules. Mechanical testing provides that the microcapsules containing the lowest concentration of internal oil (5 wt%) have the highest rupture force and nominal rupture stress due to the higher silica content of these microcapsules. The incorporation of Span 80 does not significantly change the adhesion of microcapsules to a Lorica Soft leather substrate, mimicking human skin. The microcapsules are designed to release their contents upon mechanical rupture induced by rubbing against skin. This work shows the potential of such microcapsules to be applied in a range of consumer products, such as cosmetics.

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含有α-生育酚的多芯二氧化硅微胶囊在消费品中的潜在应用
微胶囊是一种先进的技术,用于保护和提高敏感活性成分的加工、传递和性能,如脂溶性维生素。以高效、低成本和环保的方式制造含有这些材料的微胶囊仍然是一个持续的挑战。采用油包水包油双乳液模板,在室温下通过盐致失稳和纳米二氧化硅团聚法制备了芯部含有α-生育酚的多核二氧化硅微胶囊。用三种不同浓度(5%、10%和15% wt%)的内油相(α-生育酚和葵花籽油的混合物)制备初级乳状液。二级乳状液的外油相由向日葵油中不同浓度的Span 80(0、0.5和1 wt%)组成。在储存过程中,胶囊岩心的大小没有变化,证实了微胶囊内岩心的稳定性。机械测试表明,含有最低浓度内油(5 wt%)的微胶囊具有最高的破裂力和标称破裂应力,因为这些微胶囊的二氧化硅含量较高。Span 80的掺入不会显著改变微胶囊对Lorica软皮革基材的粘附性,模仿人类皮肤。微胶囊被设计成在摩擦皮肤引起机械破裂时释放其内容物。这项工作显示了这种微胶囊在化妆品等一系列消费品中的应用潜力。
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来源期刊
Materials Advances
Materials Advances MATERIALS SCIENCE, MULTIDISCIPLINARY-
CiteScore
7.60
自引率
2.00%
发文量
665
审稿时长
5 weeks
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