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适用于亲水性单体的ICAR ATRP的高效便捷光催化循环系统。

Highly Efficient and Facile Photocatalytic Recycling System Suitable for ICAR ATRP of Hydrophilic Monomers.

作者信息

Jiang Xiaowu, Zhang Lifen, Cheng Zhenping, Zhu Xiulin

机构信息

Suzhou key Laboratory of Macromolecular Design and Precision Synthesis, Jiangsu Key Laboratory of Advanced Functional Polymer Design and Application, Department of Polymer Science and Engineering, College of Chemistry, Chemical Engineering and Materials Science, Soochow University, Suzhou, 215123, China.

出版信息

Macromol Rapid Commun. 2016 Aug;37(16):1337-43. doi: 10.1002/marc.201600215. Epub 2016 Jun 14.

Abstract

Photoinduced initiators for continuous activator regeneration atom transfer radical polymerization (ATRP) of hydrophilic monomers in heptane/ethanol latent-biphasic system for copper catalyst separation and recycling have been realized for the first time at room temperature with different wavelengths of visible light LED (green, blue, purple, and white LED) as external stimulus, using 2-bromophenylacetate as the ATRP initiator and camphorquinone/triethylamine as the photoinitiator. In this system, hybrid catalyst complex (HCc) is synthesized as a novel nonpolar catalyst, which is preferentially dissolved in heptane. The hydrophilic polymers obtained catalyzed by HCc in heptane/ethanol mixture solvent show typical "living" features, for example, the values of Mn,GPC increase linearly with monomer conversion up to quantitative level (>96%) and the molecular weight distributions were kept narrow (Mw /Mn < 1.20) throughout the polymerization process. It should be noted that the excellent controllability of this novel polymerization system can be achieved even after 5 catalyst recycling experiments under LED irradiation.

摘要

首次在室温下,以2-溴苯乙酸酯为原子转移自由基聚合(ATRP)引发剂,樟脑醌/三乙胺为光引发剂,利用不同波长的可见光发光二极管(绿色、蓝色、紫色和白色发光二极管)作为外部刺激,在庚烷/乙醇潜双相体系中实现了用于亲水性单体连续活化剂再生原子转移自由基聚合(ATRP)的光引发剂,用于铜催化剂的分离和循环利用。在该体系中,合成了一种新型非极性催化剂——杂化催化剂复合物(HCc),其优先溶解于庚烷中。由HCc在庚烷/乙醇混合溶剂中催化得到的亲水性聚合物表现出典型的“活性”特征,例如,凝胶渗透色谱法测得的数均分子量(Mn,GPC)随单体转化率线性增加直至定量水平(>96%),并且在整个聚合过程中分子量分布保持狭窄(Mw /Mn < 1.20)。需要注意的是,即使在发光二极管照射下进行5次催化剂循环实验后,该新型聚合体系仍能实现优异的可控性。

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