Department of Chemistry, University of Pennsylvania, Philadelphia, Pennsylvania 19104, United States.
J Am Chem Soc. 2011 Feb 2;133(4):998-1006. doi: 10.1021/ja108948z.
The ability to engineer surface properties of nanocrystals (NCs) is important for various applications, as many of the physical and chemical properties of nanoscale materials are strongly affected by the surface chemistry. Here, we report a facile ligand-exchange approach, which enables sequential surface functionalization and phase transfer of colloidal NCs while preserving the NC size and shape. Nitrosonium tetrafluoroborate (NOBF4) is used to replace the original organic ligands attached to the NC surface, stabilizing the NCs in various polar, hydrophilic media such as N,N-dimethylformamide for years, with no observed aggregation or precipitation. This approach is applicable to various NCs (metal oxides, metals, semiconductors, and dielectrics) of different sizes and shapes. The hydrophilic NCs obtained can subsequently be further functionalized using a variety of capping molecules, imparting different surface functionalization to NCs depending on the molecules employed. Our work provides a versatile ligand-exchange strategy for NC surface functionalization and represents an important step toward controllably engineering the surface properties of NCs.
纳米晶体(NCs)表面性质的工程化对于各种应用非常重要,因为纳米级材料的许多物理和化学性质都受到表面化学的强烈影响。在这里,我们报告了一种简便的配体交换方法,该方法可在保持 NC 尺寸和形状的同时,对胶体 NC 进行顺序表面功能化和相转移。硝酰四氟硼酸盐(NOBF4)用于取代附着在 NC 表面的原始有机配体,使 NC 在各种极性、亲水性介质(如 N,N-二甲基甲酰胺)中稳定存在多年,没有观察到聚集或沉淀。这种方法适用于不同尺寸和形状的各种 NC(金属氧化物、金属、半导体和电介质)。所得亲水性 NC 随后可以使用各种封端分子进一步功能化,根据所使用的分子赋予 NC 不同的表面功能化。我们的工作为 NC 表面功能化提供了一种通用的配体交换策略,是朝着可控工程化 NC 表面性质迈出的重要一步。