...
首页> 外文期刊>Biomacromolecules >Functionalized Polycarbonate Derived from Tartaric Acid: Enzymatic Ring-Opening Polymerization of a Seven-Membered Cyclic Carbonate
【24h】

Functionalized Polycarbonate Derived from Tartaric Acid: Enzymatic Ring-Opening Polymerization of a Seven-Membered Cyclic Carbonate

机译:酒石酸衍生的功能化聚碳酸酯:七元环状碳酸酯的酶促开环聚合

获取原文
获取原文并翻译 | 示例

摘要

Enantiomerically pure functional polycarbonate was synthesized from a novel seven-membered cyclic carbonate monomer derived from naturally occurring L-tartaric acid. The monomer was synthesized in three steps and screened for polymerization with four commercially available lipases from different sources at 80 °C, in bulk. The ring-opening polymerization (ROP) was affected by the source of the enzyme; the highest number-average molecular weight, M_n = 15500 g/mol (PDI = 1.7; [α]_D~(20) = +77.8, T_m = 58.8 °C) optically active polycarbonate was obtained with lipase Novozyme-435. The relationship between monomer conversion, reaction time, molecular weight, and molecular weight distribution were investigated for Novozyme-435 catalyzed ROP. Deprotection of the ketal groups was achieved with minimal polymer chain cleavage (M_n = 10000 g/mol, PDI = 2.0) and resulted in optically pure polycarbonate ([α]_D~(20) = +56) bearing hydroxy functional groups. Deprotected poly(ITC) shows T_m of 60.2 °C and ΔH_f = 69.56 J/g and similar to that of the poly(ITC), a glass transition temperature was not found. The availability of the pendant hydroxyl group is expected to enhance the biodegradability of the polymer and serves in a variety of potential biomedical applications such as polymeric drug delivery systems.
机译:对映体纯的功能性聚碳酸酯是由衍生自天然L-酒石酸的新型七元环状碳酸酯单体合成的。分三步合成单体,然后在80°C下用来自不同来源的四种市售脂肪酶进行筛分聚合。酶的来源影响开环聚合(ROP);用脂肪酶Novozyme-435获得最高数均分子量,M_n = 15500g / mol(PDI = 1.7; [α] _D〜(20)= + 77.8,T_m = 58.8℃)。研究了Novozyme-435催化的ROP的单体转化率,反应时间,分子量和分子量分布之间的关系。通过最小的聚合物链断裂(M_n = 10000g / mol,PDI = 2.0)实现缩酮基团的脱保护,并得到带有羟基官能团的光学纯的聚碳酸酯([α] _D〜(20)= + 56)。脱保护的聚(ITC)显示T_m为60.2°C,ΔH_f= 69.56 J / g,与聚(ITC)相似,未发现玻璃化转变温度。预期羟基侧基的可用性将增强聚合物的生物降解性,并且可用于多种潜在的生物医学应用中,例如聚合物药物递送系统。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号