Lin Xiang, Fang Guoqiang, Liu Yuanlan, He Yangyang, Wang Li, Dong Bin
Key Laboratory of New Energy and Rare Earth Resource Utilization of State Ethnic Affairs Commission, Key Laboratory of Photosensitive Materials & Devices of Liaoning Province, School of Physics and Materials Engineering, Dalian Minzu University, Dalian 116600, China.
J Phys Chem Lett. 2020 May 7;11(9):3573-3581. doi: 10.1021/acs.jpclett.0c01116. Epub 2020 Apr 23.
Interfacial self-assembly is a powerful technology for preparing large scale nanoparticle monolayers, but fabrication of highly repeatable large scale nanoparticle monolayers remains a challenge. Here we develop an oil/water/oil (O/W/O) three-phase system based on the Marangoni effect to fabricate highly reproducible nanoparticle monolayers. Nanoparticles could be easily transferred and compressed from the lower O/W interface to the upper O/W interface due to the interfacial tension gradient. The O/W/O system can be constructed using different kinds of organic solvents. Through this approach, good uniformity and reproducibility of the nanoparticle monolayers could be guaranteed even using a wide range of nanoparticle concentrations. Furthermore, this strategy is generally applicable to various nanoparticles with different sizes, shapes, components, and surface ligands, which offers a facile and general approach to functional nanodevices.
界面自组装是制备大规模纳米颗粒单层的一项强大技术,但制备高度可重复的大规模纳米颗粒单层仍然是一个挑战。在此,我们基于马兰戈尼效应开发了一种油/水/油(O/W/O)三相系统,以制备高度可重现的纳米颗粒单层。由于界面张力梯度,纳米颗粒可以很容易地从下部的油/水界面转移并压缩到上部的油/水界面。O/W/O系统可以使用不同种类的有机溶剂构建。通过这种方法,即使使用广泛的纳米颗粒浓度,也能保证纳米颗粒单层具有良好的均匀性和可重复性。此外,该策略通常适用于具有不同尺寸、形状、成分和表面配体的各种纳米颗粒,这为功能性纳米器件提供了一种简便通用的方法。