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A versatile synthetic strategy for macromolecular cages: intramolecular consecutive cyclization of star-shaped polymers

机译:大分子笼的通用合成策略:星形聚合物的分子内连续环化

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摘要

Cage-shaped polymers, or “macromolecular cages”, are of great interest as the macromolecular analogues of molecular cages because of their various potential applications in supramolecular chemistry and materials science. However, the systematic synthesis of macromolecular cages remains a great challenge. Herein, we describe a robust and versatile synthetic strategy for macromolecular cages with defined arm numbers and sizes based on the intramolecular consecutive cyclization of highly reactive norbornene groups attached to each end of the arms of a star-shaped polymer precursor. The cyclizations of three-, four-, six-, and eight-armed star-shaped poly(ε-caprolactone)s (PCLs) bearing a norbornenyl group at each arm terminus were effected with Grubbs' third generation catalyst at high dilution. ~(1) H NMR, SEC, and MALDI-TOF MS analyses revealed that the reaction proceeded to produce the desired macromolecular cages with sufficient purity. The molecular sizes of the macromolecular cages were controlled by simply changing the molecular weight of the star-shaped polymer precursors. Systematic investigation of the structure–property relationships confirmed that the macromolecular cages adopt a much more compact conformation, in both the solution and bulk states, as compared to their linear and star-shaped counterparts. This synthetic approach marks a significant advance in the synthesis of complex macromolecular architectures and provides a platform for novel applications using cage-shaped molecules with polymer frameworks.
机译:笼形聚合物或“大分子笼”作为分子笼的大分子类似物备受关注,因为它们在超分子化学和材料科学中有多种潜在应用。然而,大分子笼的系统合成仍然是一个巨大的挑战。在本文中,我们描述了一种高分子量合成笼子的稳健而通用的合成策略,该笼子具有高分子量的降冰片烯基团,这些高分子量的降冰片烯基团附着在星形聚合物前体的每个末端上,在分子内连续环化,具有确定的臂数和大小。用高稀释度的第三代催化剂,在每个臂末端带有降冰片烯基的三臂,四臂,六臂和八臂星形聚(ε-己内酯)(PCL)环化。 〜(1)1 H NMR,SEC和MALDI-TOF MS分析表明,反应进行以产生具有足够纯度的所需大分子笼。通过简单地改变星形聚合物前体的分子量来控制大分子笼的分子大小。对结构-性质关系的系统研究证实,与线性和星形对应物相比,大分子笼在溶液状态和本体状态均采用更紧密的构象。这种合成方法标志着复杂的高分子结构合成的重大进展,并为使用具有聚合物骨架的笼形分子提供了新的应用平台。

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