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理解用于可持续聚合物的双核聚合催化剂中的催化协同作用。

Understanding catalytic synergy in dinuclear polymerization catalysts for sustainable polymers.

作者信息

Fiorentini Francesca, Diment Wilfred T, Deacy Arron C, Kerr Ryan W F, Faulkner Stephen, Williams Charlotte K

机构信息

Department of Chemistry, University of Oxford, OX1 3TA, Oxford, United Kingdom.

出版信息

Nat Commun. 2023 Aug 8;14(1):4783. doi: 10.1038/s41467-023-40284-z.

Abstract

Understanding the chemistry underpinning intermetallic synergy and the discovery of generally applicable structure-performances relationships are major challenges in catalysis. Additionally, high-performance catalysts using earth-abundant, non-toxic and inexpensive elements must be prioritised. Here, a series of heterodinuclear catalysts of the form Co(III)M(I/II), where M(I/II) = Na(I), K(I), Ca(II), Sr(II), Ba(II) are evaluated for three different polymerizations, by assessment of rate constants, turn over frequencies, polymer selectivity and control. This allows for comparisons of performances both within and between catalysts containing Group I and II metals for CO/propene oxide ring-opening copolymerization (ROCOP), propene oxide/phthalic anhydride ROCOP and lactide ring-opening polymerization (ROP). The data reveal new structure-performance correlations that apply across all the different polymerizations: catalysts featuring s-block metals of lower Lewis acidity show higher rates and selectivity. The epoxide/heterocumulene ROCOPs both show exponential activity increases (vs. Lewis acidity, measured by the pK of [M(OH)]), whilst the lactide ROP activity and CO/epoxide selectivity show linear increases. Such clear structure-activity/selectivity correlations are very unusual, yet are fully rationalised by the polymerization mechanisms and the chemistry of the catalytic intermediates. The general applicability across three different polymerizations is significant for future exploitation of catalytic synergy and provides a framework to improve other catalysts.

摘要

理解金属间协同作用的化学基础以及发现普遍适用的结构-性能关系是催化领域的主要挑战。此外,必须优先考虑使用储量丰富、无毒且廉价元素的高性能催化剂。在此,通过评估速率常数、周转频率、聚合物选择性和可控性,对一系列Co(III)M(I/II)形式的异双核催化剂进行了三种不同聚合反应的评估,其中M(I/II) = Na(I)、K(I)、Ca(II)、Sr(II)、Ba(II)。这使得能够比较含第I族和第II族金属的催化剂在CO/环氧丙烷开环共聚(ROCOP)、环氧丙烷/邻苯二甲酸酐ROCOP和丙交酯开环聚合(ROP)反应中的性能,包括催化剂内部以及不同催化剂之间的性能比较。数据揭示了适用于所有不同聚合反应的新结构-性能相关性:具有较低路易斯酸度的s区金属的催化剂显示出更高的反应速率和选择性。环氧化物/杂累积二烯ROCOP反应均显示出指数级的活性增加(相对于通过[M(OH)]的pK测量的路易斯酸度),而丙交酯ROP活性和CO/环氧化物选择性则呈线性增加。这种清晰的结构-活性/选择性相关性非常不寻常,但通过聚合反应机理和催化中间体的化学性质得到了充分的解释。这种在三种不同聚合反应中的普遍适用性对于未来催化协同作用的开发具有重要意义,并为改进其他催化剂提供了一个框架。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/808c/10409799/ff62002f285a/41467_2023_40284_Fig1_HTML.jpg

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