Butler Frederica, Fiorentini Francesca, Eisenhardt Katharina H S, Williams Charlotte K
Department of Chemistry, University of Oxford, 12 Mansfield Road, Oxford, OX1 3TA, United Kingdom.
Angew Chem Int Ed Engl. 2025 Mar 17;64(12):e202422497. doi: 10.1002/anie.202422497. Epub 2025 Jan 16.
In homogeneous catalysis, uncovering structure-activity relationships remains very rare but invaluable to understand and rationally improve performances. Here, generalizable structure-activity relationships apply to a series of heterodinuclear polymerization catalysts featuring Co(III) and s-block metals M(I/II) (M=Na(I), K(I), Ca(II), Sr(II), Ba(II)). These are shown to apply to polycarbonate production by the ring-opening copolymerizations (ROCOP) of cyclohexene oxide (CHO) and carbon dioxide (CO), conducted at high (20 bar) and low (1 bar) CO pressures, and to polyester production by copolymerization of cyclohexene oxide and phthalic anhydride (PA). For the CHO/PA and high-pressure CHO/CO copolymerizations, activity increases exponentially with s-block metal acidity peaking at the Co(III)K(I) catalyst, whilst for the low-pressure CHO/CO copolymerization it increases linearly to the same metal combination. The polymerization kinetics fit second order rate laws and the correlations support dinuclear metallate mechanistic hypotheses. These relationships help understand and identify key metal complex structural features in synergic polymerization catalysis.
在均相催化中,揭示结构-活性关系仍然非常罕见,但对于理解和合理提高催化性能却非常宝贵。在此,通用的结构-活性关系适用于一系列以Co(III)和s区金属M(I/II)(M = Na(I)、K(I)、Ca(II)、Sr(II)、Ba(II))为特征的异双核聚合催化剂。这些关系被证明适用于在高(20 巴)和低(1 巴)CO压力下通过环氧环己烷(CHO)和二氧化碳(CO₂)的开环共聚(ROCOP)生产聚碳酸酯,以及通过环氧环己烷与邻苯二甲酸酐(PA)的共聚生产聚酯。对于CHO/PA和高压CHO/CO₂共聚反应,活性随着s区金属酸度呈指数增加,在Co(III)K(I)催化剂处达到峰值,而对于低压CHO/CO₂共聚反应,活性则线性增加至相同的金属组合。聚合动力学符合二级速率定律,这些相关性支持双核金属酸盐的机理假设。这些关系有助于理解和识别协同聚合催化中关键的金属配合物结构特征。