School of Chemical Sciences, Dublin City University, Glasnevin, Dublin 9, Ireland.
Faculty of Engineering, Shine Mongol Institute of Technology, Ulaanbaatar, 13372, Mongolia.
Small. 2018 Nov;14(44):e1802278. doi: 10.1002/smll.201802278. Epub 2018 Sep 14.
A novel colloidal approach is presented for preparing fully dispersed nanoparticle (NP) assemblies (clusters) of narrow size-polydispersity over a wide range of sizes through irreversible depletion of stabilizing ligands onto a liquid-liquid interface. Unusually, the relative monodispersity of the assemblies continuously improves throughout the process. A detailed kinetics study into the assembly of iron oxide NP clusters shows that the assembly rate decreases with NP concentration, pinpointing the role of the interface in size focusing. A new protocol for identifying initial conditions that enable controlled assembly is described, which allows extension of the approach to multiple NP types, opening up a general route to colloidally processed materials. The process uses cheap materials, it is reproducible, robust, and scaleable, and it allows for selection of both particle and cluster size. In the case of assemblies of magnetic iron oxide NPs, these advantages enable tuning of the magnetic properties of the assemblies for applications such as magnetically targetable MRI-trackable agents in biomedicine.
提出了一种新颖的胶体方法,通过将稳定剂不可逆地消耗到液-液界面上,在很宽的尺寸范围内制备具有窄尺寸多分散性的完全分散纳米颗粒(NP)组装体(簇)。不同寻常的是,组装体的相对单分散性在整个过程中不断提高。对氧化铁 NP 簇组装的详细动力学研究表明,组装速率随 NP 浓度的降低而降低,这指出了界面在尺寸聚焦中的作用。描述了一种用于确定能够实现控制组装的初始条件的新方案,该方案允许将该方法扩展到多种 NP 类型,为胶体处理材料开辟了一条通用途径。该过程使用廉价的材料,可重复,稳健且可扩展,并允许选择颗粒和簇的尺寸。对于磁性氧化铁 NP 的组装体,这些优点使组装体的磁性能可调谐,可用于生物医学中可靶向 MRI 的磁性追踪剂等应用。