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Transformation of a 4+6 Salicylbisimine Cage to Chemically Robust Amide Cages

机译:4 + 6水杨基双亚胺笼转换为化学上稳定的酰胺笼。

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摘要

In recent years, interest in shape‐persistent organic cage compounds has steadily increased, not least because dynamic covalent bond formation enables such structures to be made in high to excellent yields. One often used type of dynamic bond formation is the generation of an imine bond from an aldehyde and an amine. Although the reversibility of the imine bond formation is advantageous for high yields, it is disadvantageous for the chemical stability of the compounds. Amide bonds are, in contrast to imine bonds much more robust. Shape‐persistent amide cages have so far been made by irreversible amide bond formations in multiple steps, very often accompanied by low yields. Here, we present an approach to shape‐persistent amide cages by exploiting a high‐yielding reversible cage formation in the first step, and a Pinnick oxidation as a key step to access the amide cages in just three steps. These chemically robust amide cages can be further transformed by bromination or nitration to allow post‐functionalization in high yields. The impact of the substituents on the gas sorption behavior was also investigated.
机译:近年来,人们对形状持久性有机笼状化合物的兴趣稳步增长,这不仅是因为动态共价键的形成使这种结构能够以高产量获得极好的产量。动态键形成的一种经常使用的类型是由醛和胺生成亚胺键。尽管亚胺键形成的可逆性对于高收率是有利的,但是对于化合物的化学稳定性是不利的。与亚胺键相比,酰胺键更坚固。到目前为止,形状持久的酰胺笼是由不可逆的酰胺键形成分多个步骤制成的,通常伴随着低产率。在这里,我们提出了一种通过在第一步中利用高产可逆性笼状结构,以及将Pinnick氧化作为仅需三步即可进入酰胺笼的关键步骤,来形成形状持久的酰胺笼的方法。这些化学坚固的酰胺笼可通过溴化或硝化进一步转化,以实现高收率的后功能化。还研究了取代基对气体吸附行为的影响。

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