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通过四嗪-烯烃反应实现金属有机笼的结构转变

Structural Transformations of Metal-Organic Cages through Tetrazine-Alkene Reactivity.

作者信息

Black Martin R, Bhattacharyya Soumalya, Argent Stephen P, Pilgrim Ben S

机构信息

School of Chemistry, University of Nottingham, University Park, Nottingham NG7 2RD, U.K.

出版信息

J Am Chem Soc. 2024 Sep 5;146(41):28233-41. doi: 10.1021/jacs.4c08591.

Abstract

The assembly of metal-organic cages is governed by metal ion coordination preferences and the geometries of the typically rigid and planar precursor ligands. PdL cages are among the most structurally diverse, with subtle differences in the metal-ligand coordination vectors resulting in drastically different assemblies, however almost all rely on rigid aromatic linkers to avoid the formation of intractable mixtures. Here we exploit the inverse electron-demand Diels-Alder (IEDDA) reaction between tetrazine linker groups and alkene reagents to trigger structural changes induced by post-assembly modification. The structure of the 1,4-dihydropyridazine produced by IEDDA (often an afterthought in click chemistry) is crucial; its two sp centers increase flexibility and nonplanarity, drastically changing the range of accessible coordination vectors. This triggers an initial PdL tetrahedral cage to transform into different PdL lantern cages, with both the transformation extent (thermodynamics) and rate (kinetics) dependent on the alkene dienophile selected. With cyclopentene, the unsymmetrical 1,4-dihydropyridazine ligands undergo integrative sorting in the solid state, with both head-to-tail orientation and enantiomer selection, leading to a single isomer from the 39 possible. This preference is rationalized through entropy, symmetry, and hydrogen bonding. Subsequent oxidation of the 1,4-dihydropyridazine to the aromatic pyridazine rigidifies the ligands, restoring planarity. The oxidized ligands no longer fit in the lantern structure, inducing further structural transformations into PdL tetrahedra and PdL double-walled triangles. The concept of controllable addition of limited additional flexibility and then its removal through well-defined reactivity we envisage being of great interest for structural transformations of any class of supramolecular architecture.

摘要

金属有机笼的组装受金属离子配位偏好以及通常刚性且平面的前体配体的几何形状控制。钯配体(PdL)笼是结构最多样化的笼之一,金属 - 配体配位向量的细微差异会导致截然不同的组装结构,然而几乎所有的组装都依赖刚性芳族连接基来避免形成难以处理的混合物。在这里,我们利用四嗪连接基团与烯烃试剂之间的逆电子需求狄尔斯 - 阿尔德(IEDDA)反应来触发组装后修饰诱导的结构变化。IEDDA产生的1,4 - 二氢哒嗪的结构(在点击化学中通常是事后考虑的因素)至关重要;其两个sp中心增加了灵活性和非平面性,极大地改变了可及配位向量的范围。这促使最初的PdL四面体笼转变为不同的PdL灯笼笼,转变程度(热力学)和速率(动力学)均取决于所选择的烯烃亲双烯体。对于环戊烯,不对称的1,4 - 二氢哒嗪配体在固态下进行整合排序,包括头对尾取向和对映体选择,从39种可能的异构体中产生单一异构体。这种偏好通过熵、对称性和氢键得到合理解释。随后将1,4 - 二氢哒嗪氧化为芳香哒嗪使配体刚性化,恢复平面性。氧化后的配体不再适合灯笼结构,从而诱导进一步的结构转变为PdL四面体和PdL双壁三角形。我们设想,可控地添加有限的额外灵活性,然后通过明确的反应性将其去除这一概念,对于任何一类超分子结构的结构转变都将具有极大的吸引力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2a55/11487605/eadb4ba47918/ja4c08591_0001.jpg

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