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通过原位技术制备界面纳米颗粒组装体

Templating Interfacial Nanoparticle Assemblies via in Situ Techniques.

作者信息

Tran Lisa, Haase Martin F

机构信息

Department of Chemical Engineering , Columbia University , New York , New York 10027 , United States.

Department of Chemical Engineering , Rowan University , Glassboro , New Jersey 08028 , United States.

出版信息

Langmuir. 2019 Jul 2;35(26):8584-8602. doi: 10.1021/acs.langmuir.9b00130. Epub 2019 Mar 28.

Abstract

In situ surface modification of nanoparticles has a rich industrial history, but in recent years, it has also received increased attention in the field of directed self-assembly. In situ techniques rely on components within a Pickering emulsion system, such as amphiphiles that act as hydrophobizers or ionic species that screen charges, to drive the interfacial assembly of particles. Instead of stepwise procedures to chemically tune the particle wettability, in situ methods use elements already present within the system to alter the nanoparticle interfacial behavior, often depending on Coulombic interactions to simplify operations. The surface modifications are not contingent on specific chemical reactions, which further enables a multitude of possible nanoparticles to be used within a given system. In recent studies, in situ methods have been combined with external means of shaping the interface to produce materials with high interfacial areas and complex geometries. These systems have facilely tunable properties, enabling their use in an extensive array of applications. In this feature article, in honor of the late Prof. Helmuth Möhwald, we review how in situ techniques have influenced the development of soft, advanced materials, covering the fundamental interfacial phenomena with an outlook on materials science.

摘要

纳米颗粒的原位表面改性有着丰富的工业历史,但近年来,它在定向自组装领域也受到了越来越多的关注。原位技术依靠皮克林乳液体系中的成分,如用作疏水化剂的两亲物或屏蔽电荷的离子物种,来驱动颗粒的界面组装。原位方法不是通过逐步程序来化学调节颗粒的润湿性,而是利用系统中已有的元素来改变纳米颗粒的界面行为,通常依靠库仑相互作用来简化操作。表面改性不依赖于特定的化学反应,这进一步使得在给定系统中可以使用多种可能的纳米颗粒。在最近的研究中,原位方法已与塑造界面的外部手段相结合,以生产具有高界面面积和复杂几何形状的材料。这些体系具有易于调节的性质,使其能够用于广泛的应用。在这篇专题文章中,为纪念已故的赫尔穆特·默瓦尔德教授,我们回顾原位技术如何影响了柔软的先进材料的发展,涵盖基本的界面现象并展望材料科学。

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