Percástegui Edmundo G, Mosquera Jesús, Ronson Tanya K, Plajer Alex J, Kieffer Marion, Nitschke Jonathan R
Department of Chemistry , University of Cambridge , Lensfield Road , CB2 1EW , UK . Email:
Chem Sci. 2018 Dec 12;10(7):2006-2018. doi: 10.1039/c8sc05085f. eCollection 2019 Feb 21.
Metal-organic containers are readily prepared through self-assembly, but achieving solubility and stability in water remains challenging due to ligand insolubility and the reversible nature of the self-assembly process. Here we have developed conditions for preparing a broad range of architectures that are both soluble and kinetically stable in water through metal(ii)-templated (M = Co, Ni, Zn, Cd) subcomponent self-assembly. Although these structures are composed of hydrophobic and poorly-soluble subcomponents, sulfate counterions render them water-soluble, and they remain intact indefinitely in aqueous solution. Two strategies are presented. Firstly, stability increased with metal-ligand bond strength, maximising when Ni was used as a template. Architectures that disassembled when Co, Zn and Cd templates were employed could be directly prepared from NiSO in water. Secondly, a higher density of connections between metals and ligands within a structure, considering both ligand topicity and degree of metal chelation, led to increased stability. When tritopic amines were used to build highly chelating ligands around Zn and Cd templates, cryptate-like water-soluble structures were formed using these labile ions. Our synthetic platform provides a unified understanding of the elements of aqueous stability, allowing predictions of the stability of metal-organic cages that have not yet been prepared.
金属有机容器可通过自组装轻松制备,但由于配体不溶性和自组装过程的可逆性,在水中实现溶解性和稳定性仍然具有挑战性。在这里,我们开发了通过金属(II)模板化(M = Co、Ni、Zn、Cd)亚组分自组装来制备一系列在水中既可溶又具有动力学稳定性的结构的条件。尽管这些结构由疏水且难溶的亚组分组成,但硫酸根抗衡离子使它们具有水溶性,并且它们在水溶液中可无限期保持完整。本文提出了两种策略。首先,稳定性随金属 - 配体键强度的增加而提高,以镍作为模板时稳定性达到最大值。使用钴、锌和镉模板时会分解的结构可以直接在水中由硫酸镍制备。其次,考虑配体的连接性和金属螯合程度,结构内金属和配体之间更高密度的连接会导致稳定性增加。当使用三齿胺围绕锌和镉模板构建高度螯合的配体时,使用这些不稳定离子形成了类似穴合物的水溶性结构。我们的合成平台提供了对水稳定性要素的统一理解,从而能够预测尚未制备的金属有机笼的稳定性。