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无损的光引发层层微胶囊通透性调谐。

Nondestructive light-initiated tuning of layer-by-layer microcapsule permeability.

机构信息

School of Materials Science and Engineering, Georgia Institute of Technology, Atlanta, Georgia 30332, USA.

出版信息

ACS Nano. 2013 Jan 22;7(1):598-613. doi: 10.1021/nn304748c. Epub 2012 Dec 18.

Abstract

A nondestructive way to achieve remote, reversible, light-controlled tunable permeability of ultrathin shell microcapsules is demonstrated in this study. Microcapsules based on poly{[2-(methacryloyloxy)ethyl] trimethylammonium iodide} (PMETAI) star polyelectrolyte and poly(sodium 4-styrenesulfonate) (PSS) were prepared by a layer-by-layer (LbL) technique. We demonstrated stable microcapsules with controlled permeability with the arm number of a star polymer having significant effect on the assembly structure: the PMETAI star with 18 arms shows a more uniform and compact assembly structure. We observed that in contrast to regular microcapsules from linear polymers, the permeability of the star polymer microcapsules could be dramatically altered by photoinduced transformation of the trivalent hexacyanocobaltate ions into a mixture of mono- and divalent ions by using UV irradiation. The reversible contraction of PMETAI star polyelectrolyte arms and the compaction of star polyelectrolytes in the presence of multivalent counterions are considered to cause the dramatic photoinduced changes in microcapsule properties observed here. Remarkably, unlike the current mostly destructive approaches, the light-induced changes in microcapsule permeability are completely reversible and can be used for light-mediated loading/unloading control of microcapsules.

摘要

本研究展示了一种非破坏性的方法,可实现超薄壳微胶囊的远程、可逆、光控可调渗透性。基于聚{[2-(甲基丙烯酰氧基)乙基]三甲基氯化铵}(PMETAI)星型聚电解质和聚(苯乙烯磺酸钠)(PSS)的微胶囊是通过层层(LbL)技术制备的。我们展示了具有可控渗透性的稳定微胶囊,其中星型聚合物的臂数对组装结构有显著影响:具有 18 条臂的 PMETAI 星型聚合物表现出更均匀和更紧密的组装结构。我们观察到,与来自线性聚合物的常规微胶囊相比,通过使用 UV 照射将三价六氰合钴酸根离子光诱导转化为一价和二价离子的混合物,可以显著改变星型聚合物微胶囊的渗透性。多价抗衡离子存在下 PMETAI 星型聚电解质臂的可逆收缩和星型聚电解质的紧密化被认为是导致这里观察到的微胶囊性质的显著光诱导变化的原因。值得注意的是,与当前大多数破坏性方法不同,微胶囊渗透性的光诱导变化是完全可逆的,可用于微胶囊的光介导加载/卸载控制。

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