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具有卓越机械性能的有机-无机多层微载体,用于快速消费品中的潜在活性递送。

Organic-Inorganic Multilayer Microcarriers with Superior Mechanical Properties for Potential Active Delivery in Fast-Moving Consumer Goods.

作者信息

Baiocco Daniele, Lobel Benjamin T, Al-Sharabi Mohammed, Cayre Olivier J, Routh Alexander F, Zhang Zhibing

机构信息

School of Chemical Engineering, University of Birmingham, Birmingham B15 2TT, U.K.

School of Chemical and Process Engineering, University of Leeds, Leeds LS2 9JT, U.K.

出版信息

Ind Eng Chem Res. 2025 Feb 20;64(9):4917-4931. doi: 10.1021/acs.iecr.4c04503. eCollection 2025 Mar 5.

Abstract

This study introduces an eco-friendly approach to fabricating superstrong, core-shell, composite microcapsules, offering a sustainable alternative to traditional insoluble microplastic-based materials like melamine-formaldehyde. These microcapsules were engineered with a thick CaCO shell formed via crystal ripening in the presence of water-soluble poly(acrylic acid), encasing a hexylsalicylate oil core armored by hydrophilic SiO nanoparticles. An additional polydopamine layer was deposited via oxidative autopolymerization at pH 8.5 for improved structural and surface properties of the resulting microcapsules. These microcapsules ( = 8.8 ± 0.3 μm) were spherical, with a relatively smooth surface, and exhibited unique mechanical properties, which are essential to broaden their applications in industry. Remarkably, compression tests showed a mean rupture stress of 73.5 ± 5.0 MPa, which dramatically surpasses any other inorganic/synthetic microcarrier reported in the literature. In addition, only 10-20% of the core active was released within 2 h into a mixed water-propanol medium used as an accelerated release test, where the solubility of the active oil is high, with full release over 3 days. Herein, we also propose a novel pathway-specific binding constant (PSBC) that describes the strong interaction between Ca ions and poly(acrylic acid), in connection with their stoichiometric ratio. Overall, these microcapsules hold promise for multiple fast-moving consumer goods, where maximizing the mechanical strength of microcapsules for encapsulation of valuable functional actives is paramount; this includes but is not limited to energy storage, household, agrochemical, personal care, and healthcare applications.

摘要

本研究介绍了一种制造超强核壳复合微胶囊的环保方法,为三聚氰胺甲醛等传统不溶性微塑料基材料提供了可持续的替代方案。这些微胶囊通过在水溶性聚丙烯酸存在下的晶体熟化形成了一层厚厚的碳酸钙壳,包裹着由亲水性二氧化硅纳米颗粒保护的水杨酸己酯油核。通过在pH 8.5下进行氧化自聚合沉积了一层额外的聚多巴胺层,以改善所得微胶囊的结构和表面性能。这些微胶囊(平均直径 = 8.8 ± 0.3 μm)呈球形,表面相对光滑,并表现出独特的机械性能,这对于拓宽其在工业中的应用至关重要。值得注意的是,压缩测试显示平均破裂应力为73.5 ± 5.0 MPa,大大超过了文献中报道的任何其他无机/合成微载体。此外,在用作加速释放测试的水 - 丙醇混合介质中,2小时内仅释放10 - 20%的核心活性成分,其中活性油的溶解度很高,3天内完全释放。在此,我们还提出了一种新的途径特异性结合常数(PSBC),它描述了钙离子与聚丙烯酸之间基于化学计量比的强相互作用。总体而言,这些微胶囊有望应用于多种快速消费品领域,在这些领域中,最大化微胶囊的机械强度以封装有价值的功能活性成分至关重要;这包括但不限于能量存储、家庭、农用化学品、个人护理和医疗保健应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9b81/11891905/ffcdea4a53b6/ie4c04503_0001.jpg

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