Nat Mater. 2011 Sep 25;10(11):872-6. doi: 10.1038/nmat3121.
Self-assembly of molecular units into complex and functional superstructures is ubiquitous in biology. The number of superstructures realized by self-assembly of man-made nanoscale units is also growing. However, assemblies of colloidal inorganic nanocrystals are still at an elementary level, not only because of the simplicity of the shape of the nanocrystal building blocks and their interactions, but also because of the poor control over these parameters in the fabrication of more elaborate nanocrystals. Here, we show how monodisperse colloidal octapod-shaped nanocrystals self-assemble, in a suitable solution environment, on two sequential levels. First, linear chains of interlocked octapods are formed, and subsequently the chains spontaneously self-assemble into three-dimensional superstructures. Remarkably, all the instructions for the hierarchical self-assembly are encoded in the octapod shape. The mechanical strength of these superstructures is improved by welding the constituent nanocrystals together.
分子单元自组装成复杂而功能化的超结构在生物学中无处不在。通过人为纳米级单元的自组装实现的超结构的数量也在增加。然而,胶体无机纳米晶体的组装仍然处于初级阶段,这不仅是因为纳米晶体构建块的形状和它们的相互作用简单,还因为在制造更精细的纳米晶体时对这些参数的控制较差。在这里,我们展示了单分散胶体八足形纳米晶体如何在合适的溶液环境中,在两个连续的层次上自组装。首先,形成互锁八足的线性链,随后链自发地自组装成三维超结构。值得注意的是,所有的分级自组装指令都编码在八足形状中。通过将组成纳米晶体焊接在一起,可以提高这些超结构的机械强度。