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3D 单环聚合物链结构由多乙烯基单体的可控聚合得到:超越 Flory-Stockmayer 理论。

3D single cyclized polymer chain structure from controlled polymerization of multi-vinyl monomers: beyond Flory-Stockmayer theory.

机构信息

Network of Excellence for Functional Biomaterials, National University of Ireland, Galway, Ireland.

出版信息

J Am Chem Soc. 2011 Aug 24;133(33):13130-7. doi: 10.1021/ja2039425. Epub 2011 Aug 1.

Abstract

Controlled/living radical polymerization (CRP) is a widely used technique that allows the synthesis of defined polymer architectures through precise control of molecular weights and distributions. However, the architectures of polymers prepared by the CRP techniques are limited to linear, cross-linked, and branched/dendritic structures. Here, we report the preparation of a new 3D single cyclized polymer chain structure from an in situ deactivation enhanced atom transfer radical polymerization of multivinyl monomers (MVMs), which are conventionally used for the production of branched/cross-linked polymeric materials as defined by P. Flory and W. Stockmayer nearly 70 years ago. We provide new evidence to demonstrate that it is possible to kinetically control both the macromolecular architecture and the critical gelling point in the polymerization of MVMs, suggesting the classical Flory-Stockmayer mean field theory should be supplemented with a new kinetic theory based on the space and instantaneous growth boundary concept.

摘要

可控/活性自由基聚合(CRP)是一种广泛应用的技术,通过精确控制分子量和分布,可以合成具有确定结构的聚合物。然而,CRP 技术制备的聚合物的结构仅限于线性、交联和支化/树枝状结构。在这里,我们报告了一种新的 3D 单环聚合物链结构的制备,该结构来自多乙烯基单体(MVM)的原位失活增强原子转移自由基聚合,该单体通常用于生产近 70 年前由 P. Flory 和 W. Stockmayer 定义的支化/交联聚合物材料。我们提供了新的证据表明,可以在动力学上控制 MVM 聚合的大分子结构和关键胶凝点,这表明经典的 Flory-Stockmayer 平均场理论应该辅以基于空间和瞬时生长边界概念的新动力学理论。

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