Department of Chemistry, National Chung Hsing University, Taichung 402, Taiwan, Republic of China.
Inorg Chem. 2010 Jan 18;49(2):665-74. doi: 10.1021/ic901938e.
A series of heterobimetallic titanium(IV) complexes [LTi(O(i)Pr)(mu-O(i)Pr)(2)Li(THF)(2)], [LTi(O(i)Pr)(mu-O(i)Pr)(2)Na(THF)(2)], [LTi(mu-O(i)Pr)(2)Zn(O(i)Pr)(2)], and [LTi(mu-O(i)Pr)(2)Mg(O(i)Pr)(2)] (where L = bidentate bisphenol ligands) have been synthesized and characterized including a structural determination of [L(1)Ti(mu(2)-O(i)Pr)(2)(O(i)Pr)Li(THF)(2)] (1a). These complexes were investigated for their utility in the ring-opening polymerization (ROP) of l-lactide (LA). Polymerization activities have been shown to correlate with the electronic properties of the substituent within the bisphenol ligand. In contrast to monometallic titanium initiator 1e, all the heterobimetallic titanium initiators (Ti-Li, Ti-Na, Ti-Zn, and Ti-Mg) show enhanced catalytic activity toward ring-opening polymerization (ROP) of l-LA. In addition, the use of electron-donating methoxy or methylphenylsulfonyl functional ligands reveals the highest activity. The bisphenol bimetallic complexes give rise to controlled ring-opening polymerization, as shown by the linear relationship between the percentage conversion and the number-average molecular weight. The polymerization kinetics using 2c as an initiator were also studied, and the experimental results indicate that the reaction rate is first-order with respect to both monomer and catalyst concentration with a polymerization rate constant, k = 81.64 M(-1) min(-1).
一系列的异双核钛(IV)配合物[LTi(O(i)Pr)(mu-O(i)Pr)(2)Li(THF)(2)]、[LTi(O(i)Pr)(mu-O(i)Pr)(2)Na(THF)(2)]、[LTi(mu-O(i)Pr)(2)Zn(O(i)Pr)(2)]和[LTi(mu-O(i)Pr)(2)Mg(O(i)Pr)(2)](其中 L 为双齿联苯酚配体)已经被合成并进行了结构表征,包括[L(1)Ti(mu(2)-O(i)Pr)(2)(O(i)Pr)Li(THF)(2)](1a)的结构测定。这些配合物被用于研究其在 L-丙交酯(LA)的开环聚合(ROP)中的应用。聚合活性与双酚配体中取代基的电子性质有关。与单核钛引发剂 1e 不同,所有的异双核钛引发剂(Ti-Li、Ti-Na、Ti-Zn 和 Ti-Mg)在 L-丙交酯的开环聚合(ROP)中表现出更高的催化活性。此外,使用给电子的甲氧基或甲基苯磺酰基官能配体显示出最高的活性。双酚双金属配合物引发可控的开环聚合,如转化率与数均分子量之间的线性关系所示。还研究了 2c 作为引发剂的聚合动力学,实验结果表明,反应速率与单体和催化剂浓度均呈一级关系,聚合速率常数 k = 81.64 M(-1) min(-1)。