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含不对称 N,N,O-三齿配体的锌配合物及其在丙交酯聚合中的应用。

Zinc complexes containing asymmetrical N,N,O-tridentate ligands and their application in lactide polymerization.

机构信息

Key Laboratory of Polymer Ecomaterials, Changchun Institute of Applied Chemistry, Chinese Academy of Sciences, 5625 Renmin Street, Changchun 130022, China.

出版信息

Dalton Trans. 2013 Dec 14;42(46):16334-42. doi: 10.1039/c3dt52016a.

Abstract

A series of zinc complexes based on asymmetrical N,N,O-tridentate ligands were prepared via binaphthyl diamine derivatives. These complexes were characterized and employed as catalysts in lactide polymerization. The X-ray diffraction analyses revealed that molecular structures of 1b and 2b were mononuclear complexes with zinc atoms in distorted octahedral geometries. Upon co-catalysis with isopropanol, complex 2a showed the highest activity among these zinc complexes for the ring-opening polymerization of L-lactide, and complex 3a exhibited the highest stereoselectivity for the ring-opening polymerization of rac-lactide affording substantially isotactic polylactide (PLA) with a P(m) of 0.62. The polymerization kinetics using 2a as a catalyst was studied in detail. The kinetics of the polymerization results revealed that the rates of polymerization were first-order both in the monomer and the catalyst, and there was a linear relationship between the L-LA conversion and the number-average molecular weight of PLA with a narrow molecular distribution (1.07-1.17). The activation energy (31.49 kJ mol(-1)) was deduced according to the Arrhenius equation.

摘要

一系列基于不对称 N,N,O-三齿配体的锌配合物是通过联萘二胺衍生物制备的。这些配合物被表征并用作丙交酯聚合的催化剂。X 射线衍射分析表明,1b 和 2b 的分子结构是单核配合物,锌原子处于扭曲的八面体几何形状中。在与异丙醇共催化时,配合物 2a 在这些锌配合物中对 L-丙交酯的开环聚合表现出最高的活性,而配合物 3a 对 rac-丙交酯的开环聚合表现出最高的立体选择性,得到了具有高间规立构规整度(Pm 为 0.62)的聚丙交酯(PLA)。详细研究了 2a 作为催化剂的聚合动力学。聚合动力学结果表明,聚合速率在单体和催化剂中均为一级,L-丙交酯的转化率与 PLA 的数均分子量之间存在线性关系,分子量分布较窄(1.07-1.17)。根据 Arrhenius 方程推导出活化能(31.49 kJ mol(-1))。

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