Sherck Nicholas J, Kim Hyun Chang, Won You-Yeon
School of Chemical Engineering, Purdue University, West Lafayette, Indiana 47907.
Purdue University Center for Cancer Research, West Lafayette, Indiana 47907.
Macromolecules. 2016 Jul 12;49(13):4699-4713. doi: 10.1021/acs.macromol.6b00621. Epub 2016 Jun 22.
The synthesis of poly(lactic acid), PLA, is facile in the presence of the cyclic, organic amidine catalyst 1,8-diazabicyclo[5.4.0]undec-7-ene, DBU. Since DBU's catalytic capability was first reported by Lohmeijer and colleagues in 2006 for ring-opening polymerizations (ROP), there have been numerous studies conducted by a variety of groups on the catalytic functioning of DBU in the ROPs of cyclic esters resulting in a large body of un-unified material from a mechanistic standpoint. This lack of clarity will hamper engineering polymers with desired characteristics from cyclic ester and lactone monomers. The work outlined in this paper seeks to propose a unified picture of the mechanisms in the DBU catalyzed ROP of lactide. In providing this unified picture of the ROP our work encompassed: (i) proposing a detailed reaction network scheme, (ii) conducting syntheses of lactide and DBU over a range of initial concentrations, and (iii) kinetic modeling to further support the proposed reaction network. As a result, our work has produced: (i) kinetic data, (ii) a consistent, viable reaction scheme verified through kinetic modeling, (iii) deduced and quantified the interplay between polymerization routes facilitated by the presence of DBU, thus demonstrating the need for detailed kinetic studies to deconstruct complex reaction networks, (iv) the first experimental evidence in support of the combination of ketene aminal-ended chains with alcohol-ended chains, and (v) analyzed the robustness of the catalyst to acid contamination.
在环状有机脒催化剂1,8 - 二氮杂双环[5.4.0]十一碳 - 7 - 烯(DBU)存在下,聚乳酸(PLA)的合成很容易进行。自2006年洛梅杰及其同事首次报道DBU在开环聚合(ROP)中的催化能力以来,多个研究小组对DBU在环状酯ROP中的催化作用进行了大量研究,从机理角度来看,产生了大量不统一的资料。这种不清晰将阻碍由环状酯和内酯单体制备具有所需特性的工程聚合物。本文概述的工作旨在提出DBU催化丙交酯ROP机理的统一图景。在提供ROP的这一统一图景时,我们的工作包括:(i)提出详细的反应网络方案,(ii)在一系列初始浓度下进行丙交酯和DBU的合成,以及(iii)进行动力学建模以进一步支持所提出的反应网络。结果,我们的工作产生了:(i)动力学数据,(ii)通过动力学建模验证的一致、可行的反应方案,(iii)推导并量化了DBU存在促进的聚合路线之间的相互作用,从而证明了进行详细动力学研究以解构复杂反应网络的必要性,(iv)支持乙烯酮缩醛端基链与醇端基链结合的首个实验证据,以及(v)分析了催化剂对酸污染的耐受性。