Wang Xiaosong, McHale Ronan
Department of Colour Science, School of Chemistry, University of Leeds, LS2 9JT, UK.
Macromol Rapid Commun. 2010 Feb 16;31(4):331-50. doi: 10.1002/marc.200900558. Epub 2009 Nov 18.
The incorporation of metallic units into polymer chains has emerged as a promising route towards functional metal-containing (nano)materials. The resulting polymers possess rich functions derived from their metallic elements, such as redox, optical, catalytic and magnetic properties. In addition, the directional and dynamic nature of metal coordination interactions provides further variables for the exploration of novel materials with designed nanostructures. These types of polymers can be synthesized through direct metal-ligand coordination or chain polymerization of metal containing monomers. Depending on the polymerization techniques and starting components, the resulting polymers, akin to their organic counterparts, can be produced in the form of insoluble networks, processible chain structures, gels or colloids. Research into this rising multidisciplinary subject has benefited from recent progress in several related areas such as supramolecular chemistry, colloidal chemistry etc., with the combination of the relative merits of each ensuring further developments in each individual discipline. For example, as a result of studies into organometallic block copolymers self-assembly behavior, living supramolecular polymerization has been unprecedentedly realized for the architectural design of micelles (see image on the right). Nevertheless, the field is still in a developmental stage and offers ample opportunities for fundamental research, as well as material exploration. In this Feature Article, we intend to overview the field with a brief survey of recent literature.
将金属单元引入聚合物链已成为制备功能性含金属(纳米)材料的一条有前景的途径。由此产生的聚合物具有源自其金属元素的丰富功能,如氧化还原、光学、催化和磁性等性质。此外,金属配位相互作用的方向性和动态性为探索具有设计纳米结构的新型材料提供了更多变量。这类聚合物可通过直接的金属 - 配体配位或含金属单体的链式聚合来合成。根据聚合技术和起始组分的不同,所得聚合物与它们的有机同类物相似,可以制成不溶性网络、可加工的链状结构、凝胶或胶体的形式。对这一新兴多学科主题的研究受益于超分子化学、胶体化学等几个相关领域的最新进展,各领域相对优势的结合确保了每个学科的进一步发展。例如,由于对有机金属嵌段共聚物自组装行为的研究,在胶束的结构设计方面前所未有的实现了活性超分子聚合(见右图)。然而,该领域仍处于发展阶段,为基础研究以及材料探索提供了大量机会。在这篇专题文章中,我们打算通过对近期文献的简要综述来概述该领域。