首页> 外文期刊>Macromolecules >MACROMOLECULAR ENGINEERING OF POLYLACTONES AND POLYLACTIDES .23. SYNTHESIS AND CHARACTERIZATION OF BIODEGRADABLE AND BIOCOMPATIBLE HOMOPOLYMERS AND BLOCK COPOLYMERS BASED ON 1,4,8-TRIOXA[4.6]SPIRO-9-UNDECANONE
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MACROMOLECULAR ENGINEERING OF POLYLACTONES AND POLYLACTIDES .23. SYNTHESIS AND CHARACTERIZATION OF BIODEGRADABLE AND BIOCOMPATIBLE HOMOPOLYMERS AND BLOCK COPOLYMERS BASED ON 1,4,8-TRIOXA[4.6]SPIRO-9-UNDECANONE

机译:聚乳酸和聚乳酸的大分子工程.23。 1,4,8-TRIOXA [4.6] SPIRO-9-UNDECANCANONE的生物可降解和生物相容性均聚物和嵌段共聚物的合成与表征

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Homopolymers of 1,4,8-trioxa[4.6]spiro-9-undecanone (TOSUO) and block copolymers of TOSUO and epsilon-caprolactone (epsilon-CL) have been synthesized with aluminum isopropoxide as an initiator in toluene at 25 degrees C. The homopolymerization is first order with respect to both monomer and initiator, and the end-group analysis agrees with a coordination-insertion mechanism based on the acyl-oxygen cleavage of the TOSUO ring. Living poly(epsilon-caprolactone) (PCL) and poly(1,4,8-trioxa[4.6]spiro-9-undecanone) (PTOSUO) chains are very efficient macroinitiators for the polymerization of TOSUO and E-CL, respectively, with formation of block copolymers of a narrow molecular weight distribution. Size-exclusion chromatography (SEC) and C-13-NMR confirm the blocky structure of the copolymers, in agreement with DSC, which shows two glass transitions characteristic of the amorphous phase of PCL and PTOSUO, respectively. The ethylene ketal pendent groups of the PTOSUO block have been successfully converted to ketones and hydroxyl pendent groups without scission of the polyester backbone. These new materials have potential for applications in medicine, surgery, and tissue engineering. [References: 34]
机译:在25℃下,以异丙醇铝为引发剂,合成了1,4,8-三氧杂[4.6]螺-9-十一烷酮(TOSUO)的均聚物以及TOSUO和ε-己内酯的嵌段共聚物(ε-CL)。就单体和引发剂而言,均聚是一阶的,并且端基分析与基于TOSUO环的酰基-氧裂解的配位-插入机理一致。活性聚(ε-己内酯)(PCL)和聚(1,4,8-三恶[4.6] spiro-9-十一烷酮)(PTOSUO)链分别是TOSUO和E-CL聚合的非常有效的大分子引发剂。形成窄分子量分布的嵌段共聚物。尺寸排阻色谱法(SEC)和C-13-NMR证实了该共聚物的嵌段结构,与DSC一致,分别显示了PCL和PTOSUO非晶相的两个玻璃化转变特征。 PTOSUO嵌段的亚乙基缩酮侧基已成功转化为酮和羟基侧基,而未切断聚酯骨架。这些新材料具有在医学,外科手术和组织工程中的应用潜力。 [参考:34]

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