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基于锆的杂配多孔配位笼的可调合成

Tunable synthesis of heteroleptic zirconium-based porous coordination cages.

作者信息

Morey Merissa N, Montone Christine M, Dworzak Michael R, Yap Glenn P A, Bloch Eric D

机构信息

Department of Chemistry, Indiana University Bloomington IN 47405 USA

Department of Chemistry & Biochemistry, University of Delaware Newark DE 19716 USA.

出版信息

Chem Sci. 2024 Nov 18;16(2):816-823. doi: 10.1039/d4sc06023g. eCollection 2025 Jan 2.

Abstract

Zirconium-based porous coordination cages have been widely studied and have shown to be potentially useful for many applications as a result of their tunability and stability, likely as a result of their status as a molecular equivalent to the small 8 Å tetrahedral pores of UiO-66 (Zr(μ-O)(μ-OH)(COH)). Functional groups attached to these molecular materials endow them with a range of tunable properties. While so-called multivariate MOFs containing multiple types of functional groups on different bridging ligands within a structure are common, incorporating multiple functional moieties in permanently microporous molecular materials has proved challenging. By applying a mixed-ligand, or heteroleptic, synthesis strategy to cage formation, we have designed a straight-forward, one-pot synthesis of 10 Å zirconium-based molecular cages in a basket-shaped, or ZrL, geometry containing 3 : 3 ratios of combinations of two types of functional moieties from 11 different ligand options. Additionally, using more sterically hindered ligands, such as 5-benzyloxybenzene dicarboxylate, we show that ligand size governs the resulting cage geometry. This method allows for multiple functional groups to be incorporated in molecular cages and the ratio of moieties incorporated can be easily controlled. With this strategy in hand, we show that ligands for which zirconium cage syntheses have been elusive, such as 2,5-dihydroxybenzene dicarboxylate, have now been successfully incorporated into porous structures.

摘要

锆基多孔配位笼已得到广泛研究,因其具有可调节性和稳定性,可能作为与UiO - 66(Zr(μ - O)(μ - OH)(COH))的8 Å小四面体孔分子等效物,在许多应用中显示出潜在用途。连接到这些分子材料上的官能团赋予它们一系列可调节的性质。虽然在结构中不同桥连配体上含有多种类型官能团的所谓多变量金属有机框架很常见,但在永久性微孔分子材料中引入多个功能部分已证明具有挑战性。通过将混合配体或杂配体合成策略应用于笼状结构的形成,我们设计了一种简单的一锅法合成10 Å的锆基分子笼,其呈篮状或ZrL几何形状,包含来自11种不同配体选项的两种类型功能部分组合的3:3比例。此外,使用空间位阻更大的配体,如5 - 苄氧基苯二甲酸酯,我们表明配体大小决定了所得笼状结构的几何形状。这种方法允许在分子笼中引入多个官能团,并且可以轻松控制所引入部分的比例。有了这个策略,我们表明以前难以用于锆笼合成的配体,如2,5 - 二羟基苯二甲酸酯,现在已成功纳入多孔结构中。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d9eb/11694910/4eee8db9b54a/d4sc06023g-f1.jpg

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