Orhan Beste, Tschan Mathieu J-L, Wirotius Anne-Laure, Dove Andrew P, Coulembier Olivier, Taton Daniel
Laboratoire de Chimie des Polymères Organiques, Université de Bordeaux IPB-ENSCPB, Pessac F-33607 Cedex, France.
Center of Innovation and Research in Materials and Polymers (CIRMAP), Laboratory of Polymeric and Composite Materials, University of Mons, B-7000 Mons, Belgium.
ACS Macro Lett. 2018 Dec 18;7(12):1413-1419. doi: 10.1021/acsmacrolett.8b00852. Epub 2018 Nov 19.
Despite significant advances in organocatalysis, stereoselective polymerization reactions utilizing chiral organocatalysts have received very little attention, and much about the underlying mechanisms remains unknown. Here, we report that both commercially available (,)- and (,)-enantiomers of chiral thiourea-amine Takemoto's organocatalysts promote efficient control and high isoselectivity at room temperature of the ring-opening polymerization (ROP) of racemic lactide by kinetic resolution, yielding highly isotactic, semicrystalline and metal-free polylactide (PLA). Kinetic investigations and combined analyses of the resulting PLAs have allowed the stereocontrol mechanism, which eventually involves both enantiomorphic site control and chain-end control, to be determined. Moreover, epimerization of -LA to -LA is identified as being responsible for the introduction of some stereoerrors during the ROP process.
尽管有机催化取得了重大进展,但利用手性有机催化剂的立体选择性聚合反应却很少受到关注,其潜在机制仍有很多未知之处。在此,我们报道,市售的手性硫脲-胺(高本)有机催化剂的(+)-和(-)-对映体均可通过动力学拆分在室温下高效控制外消旋丙交酯的开环聚合(ROP)并实现高异选择性,生成高度全同立构、半结晶且不含金属的聚丙交酯(PLA)。对所得PLA的动力学研究和综合分析使得最终涉及对映异构位点控制和链端控制的立体控制机制得以确定。此外,α-LA向β-LA的差向异构化被确定为ROP过程中一些立体错误引入的原因。