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首页> 外文期刊>RSC Advances >Formaldehyde-free melamine microcapsules as core/shell delivery systems for encapsulation of volatile active ingredients
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Formaldehyde-free melamine microcapsules as core/shell delivery systems for encapsulation of volatile active ingredients

机译:无甲醛三聚氰胺微胶囊,用作核/壳传递系统,用于封装挥发性活性成分

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摘要

The release of volatile bioactive molecules, such as fragrances, can be controlled by microencapsulation in core–shell polymeric delivery systems. Currently, most of the available polymers are based on melamine–formaldehyde materials, and the release is generally triggered by the rupture of the brittle and stiff shell. However, formaldehyde-based chemistry may often be undesirable in applications for consumer goods such as personal care products or detergents for fabrics, and there is a strong need for formaldehyde-free microcapsules in these applications. In this article, formaldehyde is successfully substituted by glyoxal and its derivatives to allow the polymerization of melamine and other amines to prepare oligomers as starting point for core/shell polymerization. The oligomer synthesis is optimized via the reactant composition and towards an enhanced potential cross-linking density. The formulations with the most branched oligomers are applied at the interface of oil-in-water emulsions to prepare microcapsules. Their capacity to retain volatile molecules is measured by thermogravimetry and their mechanical properties are measured by micromechanical testing using compression–retraction cycles on multiple individual microcapsules. The results reveal an excellent retention capacity for volatile molecules and tunable mechanical properties that make these capsules highly suitable as a formaldehyde-free alternative to conventional aminoplast microcapsules.
机译:挥发性的生物活性分子(例如香料)的释放可以通过核-壳聚合物传输系统中的微囊化来控制。当前,大多数可用的聚合物均基于三聚氰胺-甲醛材料,并且释放通常是由脆性和硬壳的破裂触发的。然而,基于甲醛的化学经常在诸如个人护理产品或织物洗涤剂的消费品应用中是不合需要的,并且在这些应用中强烈需要无甲醛的微胶囊。在本文中,甲醛被乙二醛及其衍生物成功取代,从而允许三聚氰胺和其他胺类的聚合反应制备低聚物,作为核/壳聚合的起点。通过反应物组成优化了低聚物的合成,并提高了潜在的交联密度。将具有最多支化低聚物的制剂施用于水包油乳剂的界面以制备微胶囊。通过热重法测量其保留挥发性分子的能力,并通过使用多个单个微囊的压缩-收缩循环的微机械测试,测量其机械性能。结果表明,它们具有出色的挥发性分子保留能力和可调节的机械性能,使这些胶囊非常适合作为常规氨基塑料微胶囊的无甲醛替代品。

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