Gerencia Química, CNEA, Centro Atómico Constituyentes, Av. Gral. Paz 1499, San Martín, B1650KNA, Argentina.
Chem Soc Rev. 2011 Feb;40(2):1107-50. doi: 10.1039/c0cs00208a. Epub 2011 Jan 10.
This critical review presents and discusses the recent advances in complex hybrid materials that result from the combination of polymers and mesoporous matrices. Ordered mesoporous materials derived from supramolecular templating present high surface area and tailored pore sizes; pore surfaces can be further modified by organic, organometallic or even biologically active functional groups. This permits the creation of hybrid systems with distinct physical properties or chemical functions located in the framework walls, the pore surface, and the pore interior. Bringing polymeric building blocks into the game opens a new dimension: the possibility to create phase separated regions (functional domains) within the pores that can behave as "reactive pockets" of nanoscale size, with highly controlled chemistry and interactions within restricted volumes. The possibilities of combining "hard" and "soft" building blocks to yield these novel nanocomposite materials with tuneable functional domains ordered in space are potentially infinite. New properties are bound to arise from the synergy of both kinds of components, and their spatial location. The main object of this review is to report on new approaches towards functional polymer-inorganic mesostructured hybrids, as well as to discuss the present challenges in this flourishing research field. Indeed, the powerful concepts resulting from the synergy of sol-gel processing, supramolecular templating and polymer chemistry open new opportunities in the design of advanced functional materials: the tailored production of complex matter displaying spatially-addressed chemistry based on the control of chemical topology. Breakthrough applications are expected in the fields of sustainable energy, environment sensing and remediation, biomaterials, pharmaceutical industry and catalysis, among others (221 references).
这篇评论文章介绍并讨论了聚合物和介孔基质结合所产生的复杂混合材料的最新进展。源自超分子模板的有序介孔材料具有高表面积和可调节的孔径;孔表面可以进一步用有机、有机金属甚至生物活性官能团进行修饰。这使得具有独特物理性质或化学功能的混合系统得以创建,这些功能位于骨架壁、孔表面和孔内部。将聚合物构建块引入其中开辟了一个新的维度:在孔内创建相分离区域(功能域)的可能性,这些区域可以作为纳米级大小的“反应口袋”,在受限体积内具有高度可控的化学和相互作用。将“硬”和“软”构建块结合起来,以在空间上有序地产生具有可调谐功能域的新型纳米复合材料的可能性是无限的。新的特性必然源于两种组分的协同作用及其空间位置。本文的主要目的是报道功能聚合物-无机介孔混合材料的新方法,并讨论这一蓬勃发展的研究领域目前面临的挑战。事实上,溶胶-凝胶处理、超分子模板和聚合物化学协同作用所产生的强大概念为先进功能材料的设计开辟了新的机会:基于化学拓扑控制的具有空间寻址化学的复杂物质的定制生产。在可持续能源、环境感应和修复、生物材料、制药工业和催化等领域有望取得突破应用(221 篇参考文献)。