Department of Chemistry, University of California, Berkeley California 94720, USA.
J Am Chem Soc. 2010 Jul 28;132(29):9997-9. doi: 10.1021/ja104126u.
In ionic nanocrystals the cationic sublattice can be replaced with a different metal ion via a fast, simple, and reversible place exchange, allowing postsynthetic modification of the composition of the nanocrystal, while preserving its size and shape. Here, we demonstrate that, during such an exchange, the anionic framework of the crystal is preserved. When applied to nanoheterostructures, this phenomenon ensures that compositional interfaces within the heterostructure are conserved throughout the transformation. For instance, a morphology composed of a CdSe nanocrystal embedded in a CdS rod (CdSe/CdS) was exchanged to a PbSe/PbS nanorod via a Cu(2)Se/Cu(2)S structure. During every exchange cycle, the seed size and position within the nanorod were preserved, as evident by excitonic features, Z-contrast imaging, and elemental line scans. Anionic framework conservation extends the domain of cation exchange to the design of more complex and unique nanostructures.
在离子纳米晶体中,阳离子亚晶格可以通过快速、简单、可逆的位置交换被替换为不同的金属离子,从而允许对纳米晶体的组成进行后合成修饰,同时保持其尺寸和形状。在这里,我们证明了在这种交换过程中,晶体的阴离子框架得以保留。当应用于纳米异质结构时,这种现象确保了异质结构内的组成界面在整个转变过程中得以保留。例如,由嵌入在 CdS 棒中的 CdSe 纳米晶体组成的形态(CdSe/CdS)通过 Cu2Se/Cu2S 结构交换为 PbSe/PbS 纳米棒。在每个交换循环中,纳米棒内的种子大小和位置都得以保留,这可以通过激子特征、Z 对比度成像和元素线扫描来证明。阴离子框架的保留将阳离子交换的应用范围扩展到了更复杂和独特的纳米结构的设计。