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天然环糊精与金属离子和无机纳米粒子的相互作用:化学和材料科学的多产领域。

Interactions of Native Cyclodextrins with Metal Ions and Inorganic Nanoparticles: Fertile Landscape for Chemistry and Materials Science.

机构信息

Institute of Physical Chemistry, Polish Academy of Sciences , Kasprzaka 44/52, 01-224 Warsaw, Poland.

Faculty of Chemistry, Warsaw University of Technology , Noakowskiego 3, 00-664 Warsaw, Poland.

出版信息

Chem Rev. 2017 Nov 22;117(22):13461-13501. doi: 10.1021/acs.chemrev.7b00231. Epub 2017 Oct 19.

Abstract

Readily available cyclodextrins (CDs) with an inherent hydrophobic internal cavity and hydrophilic external surface are macrocyclic entities that display a combination of molecular recognition and complexation properties with vital implications for host-guest supramolecular chemistry. While the host-guest chemistry of CDs has been widely recognized and led to their exploitation in a variety of important functions over the last five decades, these naturally occurring macrocyclic systems have emerged only recently as promising macrocyclic molecules to fabricate environmentally benign functional nanomaterials. This review surveys the development in the field paying special attention to the synthesis and emerging uses of various unmodified CD-metal complexes and CD-inorganic nanoparticle systems and identifies possible future directions. The association of a hydrophobic cavity of CDs with metal ions or various inorganic nanoparticles is a very appealing strategy for controlling the inorganic subunits properties in the very competitive water environment. In this review we provide the most prominent examples of unmodified CDs' inclusion complexes with organometallic guests and update the research in this field from the past decade. We discuss also the coordination flexibility of native CDs to metal ions in CD-based metal complexes and summarize the progress in the synthesis and characterization of CD-metal complexes and their use in catalysis and sensing as well as construction of molecular magnets. Then we provide a comprehensive overview of emerging applications of native CDs in materials science and nanotechnology. Remarkably, in the past few years CDs have appeared as attractive building units for the synthesis of carbohydrate metal-organic frameworks (CD-MOFs) in a combination of alkali-metal cations. The preparation of this new class of highly porous materials and their applications in the separation of small molecules, the loading of drug molecules, as well as efficient host templates in the construction of nanomaterials with the desired functionality, including the first-in-class devices including sensors and memristors, are highlighted. Finally, CDs as well-known "green" molecular hosts have also been used as ideal functional molecules to improve the solubility, stability, and bioavailability of inorganic nanoparticles. In this regard, we demonstrate various strategies for the preparation of native CDs-modified inorganic nanomaterials such as metal, metal oxide, and semiconductor and magnetic nanoparticles, aiming to take advantage of both the controlled properties of the inorganic core and the controlled properties of the coating molecules. The functionalization of a CD hydrophobic cavity with an inorganic nanoparticle is very prospective for the development of novel catalytic systems and new tools for highly selective and sensitive sensing platforms for various targets.

摘要

可轻易获得的环糊精(CDs)具有内在的疏水性内部空腔和亲水性外部表面,是具有分子识别和络合性能的大环实体,对主客体超分子化学具有重要意义。尽管 CDs 的主客体化学已得到广泛认可,并在过去五十年中在各种重要功能中得到了利用,但这些天然大环系统最近才作为有前途的大环分子出现,用于制造环境友好型功能纳米材料。本文综述了该领域的发展,特别关注各种未修饰的 CD-金属配合物和 CD-无机纳米粒子系统的合成和新兴用途,并确定了可能的未来方向。CD 的疏水性空腔与金属离子或各种无机纳米粒子的缔合是一种非常有吸引力的策略,可以控制非常竞争的水环境中无机亚基的性质。在本综述中,我们提供了未修饰的 CDs 与有机金属客体包合物的最突出实例,并更新了过去十年该领域的研究。我们还讨论了天然 CDs 对 CD 基金属配合物中金属离子的配位灵活性,并总结了 CD-金属配合物的合成和表征及其在催化和传感以及分子磁体构建中的应用进展。然后,我们全面概述了天然 CDs 在材料科学和纳米技术中的新兴应用。值得注意的是,在过去几年中,CD 已成为合成碳水化合物金属有机骨架(CD-MOFs)的有吸引力的构建单元,与碱金属阳离子结合使用。这种新型高多孔材料的制备及其在小分子分离、药物分子负载以及具有所需功能的纳米材料构建中的高效主体模板中的应用,包括包括传感器和忆阻器在内的一流设备,都得到了强调。最后,CD 作为众所周知的“绿色”分子主体,也被用作改善无机纳米粒子的溶解度、稳定性和生物利用度的理想功能分子。在这方面,我们展示了各种制备天然 CD 修饰的无机纳米材料(如金属、金属氧化物和半导体以及磁性纳米粒子)的策略,旨在利用无机核的可控性质和涂层分子的可控性质。将无机纳米粒子功能化到 CD 疏水性空腔中,对于开发新型催化体系和用于各种靶标的高选择性和灵敏传感平台的新工具非常有前景。

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