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通过与双层支架的静电相互作用控制囊泡模板纳米容器中带电分子的包封。

Controlling the Encapsulation of Charged Molecules in Vesicle-Templated Nanocontainers through Electrostatic Interactions with the Bilayer Scaffold.

机构信息

Department of Chemistry, University of Connecticut , 55 North Eagleville Road, Storrs, Connecticut 06269-3060, United States.

出版信息

Langmuir. 2017 Aug 8;33(31):7732-7740. doi: 10.1021/acs.langmuir.7b01706. Epub 2017 Jul 24.

Abstract

This work addresses the challenge of creating hollow nanocapsules with a controlled quantity of encapsulated molecules. Such nanocontainers or nanorattle-like structures represent an attractive platform for building functional devices, including nanoreactors and nanosensors. By taking advantage of the electrostatic attraction between oppositely charged cargo molecules and the surface of the templating bilayer of catanionic vesicles, formed by mixing single-tailed cationic and anionic surfactants, we were able to achieve a substantial increase in the local concentration of molecules inside the vesicle-templated nanocapsules. Control of electrostatic interactions through changes in the formulation of catanionic vesicles or the pH of the solution enabled fine tuning of the encapsulation efficiency in capturing ionic solutes. The ability to control the quantity of entrapped molecules greatly expands the application of nanocontainers in the creation of functional nanodevices.

摘要

这项工作解决了如何用可控数量的包裹分子来制造中空纳米胶囊的难题。这种纳米容器或类似纳米摇瓶的结构为构建功能设备提供了一个有吸引力的平台,包括纳米反应器和纳米传感器。通过利用带相反电荷的货物分子与由混合单尾阳离子和阴离子表面活性剂形成的两性离子囊泡模板双层之间的静电引力,我们能够实现囊泡模板纳米胶囊内分子局部浓度的大幅增加。通过改变两性离子囊泡的配方或溶液的 pH 值来控制静电相互作用,可以精细调整捕获离子溶质的包封效率。控制包裹分子数量的能力极大地扩展了纳米容器在功能性纳米器件制造中的应用。

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