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铟催化剂用于开环聚合:探究催化剂聚集的重要性。

Indium Catalysts for Ring Opening Polymerization: Exploring the Importance of Catalyst Aggregation.

机构信息

Department of Chemistry, University of British Columbia , 2036 Main Mall, Vancouver, British Columbia V6T1Z1, Canada.

出版信息

Acc Chem Res. 2017 Nov 21;50(11):2861-2869. doi: 10.1021/acs.accounts.7b00447. Epub 2017 Oct 31.

Abstract

Inexorably, the environmental persistence and damage caused by polyolefins have become major drawbacks to their continued long-term use. Global shifts in thinking from fossil-fuel to renewable biobased resources have urged researchers to focus their attention on substituting fossil-fuel based polymers with renewable and biodegradable alternatives on an industrial scale. The recent development of biodegradable polyesters from ring opening polymerization (ROP) of bioderived cyclic ester monomers has emerged as a promising new avenue toward this goal. Ever increasing numbers of metal-based initiators have been reported in the literature for the controlled ROP of cyclic esters, in particular for the polymerization of lactide to produce poly(lactic acid) (PLA). PLA has several material weaknesses, which hinder its use as a replacement for commodity plastics. Despite many advances in developing highly active and controlled catalysts for lactide polymerization, no single catalyst system has emerged to replace industrially used catalysts and provide access to PLA materials with improved properties. We reported the first example of indium(III) for the ring opening polymerization of lactide. Since then, indium(III) has emerged as a useful Lewis acid in initiators for the controlled polymerization of lactide and other cyclic esters. In particular, we have developed a large family of chiral dinuclear indium complexes bearing tridentate diaminophenolate ligands and tetradentate salen and salan ligands. Complexes within our tridentate ligand family are highly active initiators for the moderately isoselective living and immortal polymerization of rac-lactide, as well as other cyclic esters. We have shown that subtle steric effects influence aggregation in these systems, with polymerization typically proceeding through a dinuclear propagating species. In addition, profound effects on polymerization activities have been observed for central tertiary versus secondary amine donors in these and other related systems. In contrast, our well-controlled and highly active chiral indium salen systems are more isoselective than the tridentate analogues and polymerize lactide via a mononuclear propagating species. Again, we have noticed that subtle steric and electronic changes to the ligand can influence both polymerization activity and stereoselectivity via aggregation phenomena. Recently, we have reported a promising new chiral indium catalyst supported by a tetradentate salan ligand. This catalyst is remarkably water and air stable and can be activated by linear and branched alcohols to provide controlled access to multiblock copolymers in air. This catalyst represents an important step forward toward generating new, commercially relevant catalysts for ROP of cyclic esters to produce novel biodegradable polymers, and highlights the unique value of indium-based catalysts in the field.

摘要

不可避免地,聚烯烃的环境持久性和所造成的损害已成为其继续长期使用的主要缺点。全球思维从化石燃料向可再生生物基资源的转变促使研究人员将注意力集中在工业规模上用可再生和可生物降解的替代品替代基于化石燃料的聚合物。最近,通过开环聚合(ROP)生物衍生的环酯单体开发出可生物降解的聚酯,这为实现这一目标提供了一条很有前途的新途径。文献中已经报道了越来越多的用于控制环酯 ROP 的金属基引发剂,特别是用于聚合丙交酯以生产聚乳酸(PLA)的引发剂。PLA 有几个材料上的弱点,这阻碍了它作为商品塑料的替代品的使用。尽管在开发用于丙交酯聚合的高活性和可控催化剂方面取得了许多进展,但没有一种单一的催化剂体系能够取代工业上使用的催化剂,并提供具有改进性能的 PLA 材料。我们报道了首例铟(III)用于丙交酯的开环聚合。从那时起,铟(III)已成为用于控制丙交酯和其他环酯聚合的路易斯酸引发剂中的有用试剂。特别是,我们开发了一系列含有三齿二氨基苯酚配体和四齿席夫碱和席夫堿配体的手性双核铟配合物。我们的三齿配体家族中的配合物是 rac-丙交酯以及其他环酯的中等异选择性活的和永生聚合的高活性引发剂。我们已经表明,细微的空间位阻效应对这些体系中的聚集有影响,聚合通常通过双核增长物种进行。此外,在这些体系以及其他相关体系中,中心叔胺与仲胺供体对聚合活性有深远影响。相比之下,我们的控制良好且高活性的手性铟席夫堿体系比三齿类似物更具等规选择性,并且通过单核增长物种聚合丙交酯。同样,我们注意到配体的细微空间和电子变化可以通过聚集现象影响聚合活性和立构选择性。最近,我们报道了一种由四齿席夫堿配体支持的很有前途的新型手性铟催化剂。该催化剂具有出色的水和空气稳定性,并且可以通过线性和支化醇激活,以在空气中提供对多嵌段共聚物的可控访问。该催化剂代表了在生成用于环酯的 ROP 以生产新型可生物降解聚合物的新型商业相关催化剂方面向前迈出的重要一步,并突出了基于铟的催化剂在该领域的独特价值。

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