Wang Yufei, Chen Amanda A, Balto Krista P, Xie Yu, Figueroa Joshua S, Pascal Tod A, Tao Andrea R
Department of Nanoengineering and Chemical Engineering, University of California San Diego, La Jolla, California 92023-0448, United States.
Materials Science and Engineering Program, University of California San Diego, La Jolla, California 92023, United States.
ACS Nano. 2022 Aug 23;16(8):12747-12754. doi: 10.1021/acsnano.2c04595. Epub 2022 Aug 9.
Organic ligands are critical in determining the physiochemical properties of inorganic nanocrystals. However, precise nanocrystal surface modification is extremely difficult to achieve. Most research focuses on finding ligands that fully passivate the nanocrystal surface, with an emphasis on the supramolecular structure generated by the ligand shell. Inspired by molecular metal-coordination complexes, we devised an approach based on ligand anchoring groups that are flanked by encumbering organic substituents and are chemoselective for binding to nanocrystal corner, edge, and facet sites. Through experiment and theory, we affirmed that the surface-ligand steric pressures generated by these organic substituents are significant enough to impede binding to regions of low nanocurvature, such as nanocrystal facets, and to promote binding to regions of high curvature such as nanocrystal edges.
有机配体对于决定无机纳米晶体的物理化学性质至关重要。然而,实现精确的纳米晶体表面修饰极其困难。大多数研究集中于寻找能使纳米晶体表面完全钝化的配体,重点在于配体壳层产生的超分子结构。受分子金属配位络合物的启发,我们设计了一种基于配体锚定基团的方法,这些基团两侧带有阻碍性有机取代基,并且对结合纳米晶体的角、边和面位点具有化学选择性。通过实验和理论,我们证实了这些有机取代基产生的表面配体空间压力足够大,足以阻碍与低纳米曲率区域(如纳米晶体面)的结合,并促进与高曲率区域(如纳米晶体边缘)的结合。