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一种用于非水包封亲水性有效载荷的稳健油包油乳液。

A Robust Oil-in-Oil Emulsion for the Nonaqueous Encapsulation of Hydrophilic Payloads.

机构信息

Formulation Science, Corporate Research & Development , The Dow Chemical Company , Collegeville , Pennsylvania 19426 , United States.

Information Research, Corporate Research & Development , The Dow Chemical Company , Midland , Michigan 48674 , United States.

出版信息

J Am Chem Soc. 2018 Mar 14;140(10):3619-3625. doi: 10.1021/jacs.7b11847. Epub 2018 Mar 1.

Abstract

Compartmentalized structures widely exist in cellular systems (organelles) and perform essential functions in smart composite materials (microcapsules, vasculatures, and micelles) to provide localized functionality and enhance materials' compatibility. An entirely water-free compartmentalization system is of significant value to the materials community as nonaqueous conditions are critical to packaging microcapsules with water-free hydrophilic payloads while avoiding energy-intensive drying steps. Few nonaqueous encapsulation techniques are known, especially when considering just the scalable processes that operate in batch mode. Herein, we report a robust oil-in-oil Pickering emulsion system that is compatible with nonaqueous interfacial reactions as required for encapsulation of hydrophilic payloads. A major conceptual advance of this work is the notion of the partitioning inhibitor-a chemical agent that greatly reduces the payload's distribution between the emulsion's two phases, thus providing appropriate conditions for emulsion-templated interfacial polymerization. As a specific example, an immiscible hydrocarbon-amine pair of liquids is emulsified by the incorporation of guanidinium chloride (GuHCl) as a partitioning inhibitor into the dispersed phase. Polyisobutylene (PIB) is added into the continuous phase as a viscosity modifier for suitable modification of interfacial polymerization kinetics. The combination of GuHCl and PIB is necessary to yield a robust emulsion with stable morphology for 3 weeks. Shell wall formation was accomplished by interfacial polymerization of isocyanates delivered through the continuous phase and polyamines from the droplet core. Diethylenetriamine (DETA)-loaded microcapsules were isolated in good yield, exhibiting high thermal and chemical stabilities with extended shelf-lives even when dispersed into a reactive epoxy resin. The polyamine phase is compatible with a variety of basic and hydrophilic actives, suggesting that this encapsulation technology is applicable to other hydrophilic payloads such as polyols, aromatic amines, and aromatic heterocyclic bases. Such payloads are important for the development of extended pot or shelf life systems and responsive coatings that report, protect, modify, and heal themselves without intervention.

摘要

分隔结构广泛存在于细胞系统(细胞器)中,并在智能复合材料(微胶囊、脉管系统和胶束)中发挥重要功能,提供局部功能并增强材料的兼容性。完全无水的分隔系统对材料界具有重要价值,因为非水条件对于封装无水亲水性有效负载的微胶囊至关重要,同时避免了能量密集的干燥步骤。已知的非水封装技术很少,特别是在仅考虑可在批量模式下运行的可扩展工艺时。在这里,我们报告了一种强大的油包油 Pickering 乳液系统,该系统与非水界面反应兼容,这是封装亲水性有效负载所必需的。这项工作的一个主要概念进展是分区抑制剂的概念-一种化学试剂,可大大降低有效负载在乳液两相之间的分布,从而为乳液模板化界面聚合提供适当的条件。作为一个具体的例子,通过将胍盐酸盐(GuHCl)作为分区抑制剂掺入分散相中,将不混溶的碳氢化合物-胺对液体乳化。将聚异丁烯(PIB)添加到连续相中作为粘度改性剂,以适当地改变界面聚合动力学。GuHCl 和 PIB 的组合对于产生具有稳定形态的稳定乳液是必要的,这种乳液可以稳定 3 周。通过连续相中的异氰酸酯和液滴核心中的聚胺的界面聚合完成壳壁形成。二乙烯三胺(DETA)负载的微胶囊以良好的产率分离,表现出高热和化学稳定性,即使分散到反应性环氧树脂中,保质期也延长。聚胺相与各种碱性和亲水性活性剂兼容,这表明这种封装技术适用于其他亲水性有效负载,如多元醇、芳香胺和芳香杂环碱。这些有效负载对于开发扩展罐或货架寿命系统以及响应性涂层非常重要,这些涂层可以在没有干预的情况下自行报告、保护、修饰和修复。

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