Laboratory of Organic and Macromolecular Chemistry, Friedrich-Schiller-University Jena, Germany.
Adv Mater. 2011 Dec 22;23(48):5728-48. doi: 10.1002/adma.201103612. Epub 2011 Nov 23.
The utilization of supramolecular chemistry, i.e., metal-to-ligand coordination, in the field of nanotechnology is evaluated with respect to 2,2':6',2″-terpyridine, as tridentate metal binding site. Stabilization as well as directed self-assembly of nanometer-sized materials into ordered arrays are the most widely studied targets of current research. Moreover, energy- and/or electron-transfer processes are enabled when redox-active terpyridine complexes are bound to (semi)conducting species (e.g., fullerenes, polyoxometalates)-thus, applications in nanoelectronics and catalysis are currently arising from these hybrid materials. Progress made in these fields, resulting from the marriage of terpyridines (as well as their metal complexes) and nanostructures, is summarized in this Review Article.
本文综述了超分子化学(即金属-配体配位)在纳米技术领域的应用,以 2,2':6',2″-三联吡啶作为三齿金属结合位点。目前的研究主要集中在稳定和定向自组装纳米材料成有序阵列,以及当氧化还原活性三联吡啶配合物与(半)导体物种(如富勒烯、多金属氧酸盐)结合时实现能量和/或电子转移过程。因此,这些杂化材料在纳米电子学和催化领域的应用正在兴起。本文总结了由于三联吡啶(及其金属配合物)和纳米结构的结合而在这些领域取得的进展。