Aricó Fabio, Chang Theresa, Cantrill Stuart J, Khan Saeed I, Stoddart J Fraser
California NanoSystems Institute and Department of Chemistry and Biochemistry, University of California, Los Angeles, 90095-1569, USA.
Chemistry. 2005 Aug 5;11(16):4655-66. doi: 10.1002/chem.200500148.
The template-directed construction of crown-ether-like macrocycles around secondary dialkylammonium ions (R2NH2+) has been utilized for the expedient (one-pot) and high-yielding synthesis of a diverse range of mechanically interlocked molecules. The clipping together of appropriately designed dialdehyde and diamine compounds around R2NH2+-containing dumbbell-shaped components proceeds through the formation, under thermodynamic control, of imine bonds. The reversible nature of this particular reaction confers the benefits of "error-checking" and "proof-reading", which one usually associates with supramolecular chemistry and strict self-assembly processes, upon these wholly molecular systems. Furthermore, these dynamic covalent syntheses exploit the efficient templating effects that the R2NH2+ ions exert on the macrocyclization of the matched dialdehyde and diamine fragments, resulting not only in rapid rates of reaction, but also affording near-quantitative conversion of starting materials into the desired interlocked products. Once assembled, these "dynamic" interlocked compounds can be "fixed" upon reduction of the reversible imine bonds (by using BH3.THF) to give kinetically stable species, a procedure that can be performed in the same reaction vessel as the inital thermodynamically controlled assembly. Isolation and purification of the mechanically interlocked products formed by using this protocol is relatively facile, as no column chromatography is required. Herein, we present the synthesis and characterization of 1) a [2]rotaxane, 2) a [3]rotaxane, 3) a branched [4]rotaxane, 4) a bis [2]rotaxane, and 5) a novel cyclic [4]rotaxane, demonstrating, in incrementally more complex systems, the efficacy of this one-pot strategy for the construction of interlocked molecules.
围绕仲二烷基铵离子(R2NH2+)进行模板导向的类冠醚大环化合物构建,已被用于多种机械互锁分子的便捷(一锅法)高产率合成。在含R2NH2+的哑铃状组分周围,将适当设计的二醛和二胺化合物进行剪辑,通过在热力学控制下形成亚胺键来实现。这种特定反应的可逆性质赋予了这些完全分子体系“错误检查”和“校对”的优势,而人们通常将这些优势与超分子化学和严格的自组装过程联系在一起。此外,这些动态共价合成利用了R2NH2+离子对匹配的二醛和二胺片段大环化所产生的有效模板效应,不仅反应速率快,而且能使起始原料几乎定量地转化为所需的互锁产物。一旦组装完成,这些“动态”互锁化合物可通过还原可逆亚胺键(使用BH3.THF)来“固定”,从而得到动力学稳定的物种,该过程可在与初始热力学控制组装相同的反应容器中进行。使用该方案形成的机械互锁产物的分离和纯化相对简便,因为无需柱色谱法。在此,我们展示了1)一种[2]轮烷、2)一种[3]轮烷、3)一种支链[4]轮烷、4)一种双[2]轮烷和5)一种新型环状[4]轮烷的合成与表征,在逐渐更复杂的体系中证明了这种一锅法策略构建互锁分子的有效性。