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聚合物囊泡的温度响应相变:实时形态观察与分子机制

Temperature-responsive phase transition of polymer vesicles: real-time morphology observation and molecular mechanism.

作者信息

Zhou Yongfeng, Yan Deyue, Dong Wenyong, Tian Ye

机构信息

College of Chemistry & Chemical Engineering, State Key Laboratory of Metal Matrix Composites, Shanghai Jiao Tong University, 800 Dongchuan Road, Shanghai 200240, People's Republic of China.

出版信息

J Phys Chem B. 2007 Feb 15;111(6):1262-70. doi: 10.1021/jp0673563. Epub 2007 Jan 23.

Abstract

Novel thermosensitive polymer vesicles with controlled temperature-responsive phase transition at the lower critical solution temperature (LCST) varying from 8 to 81 degrees C were prepared via self-assembly of amphiphilic hyperbranched star copolymers having a hydrophobic hyperbranched poly[3-ethyl-3-(hydroxymethyl)oxetane] (HBPO) core and many hydrophilic polyethylene oxide (PEO) arms. Real-time optical microscopic observation revealed that the polymer vesicles have undergone sequential morphology changes including enrichment, aggregation, fusion, and vesicle-to-membrane transformation near the LCST. Molecular-level investigation indicates that the LCST transition results from the decreasing water solubility of the polymer vesicles with increasing temperature based on the partial dehydration of the PEO vesicle corona. On the basis of these results, a LCST transition mechanism, in view of the molecular configuration, balance of hydrophilic and hydrophobic moieties, and the vesicle morphology transformations, was proposed. As far as we know, the work presented here is the first demonstration of thermosensitive vesicles based on PEO, and the finding may be useful to design the thermosensitive core-shell structures by introducing the PEO segments.

摘要

通过具有疏水超支化聚3-乙基-3-(羟甲基)氧杂环丁烷核和许多亲水性聚环氧乙烷(PEO)臂的两亲性超支化星形共聚物的自组装,制备了在8至81摄氏度的较低临界溶液温度(LCST)下具有可控温度响应相变的新型热敏聚合物囊泡。实时光学显微镜观察表明,聚合物囊泡在LCST附近经历了一系列形态变化,包括富集、聚集、融合以及囊泡到膜的转变。分子水平的研究表明,由于PEO囊泡冠层的部分脱水,聚合物囊泡的水溶性随温度升高而降低,从而导致LCST转变。基于这些结果,从分子构型、亲水和疏水部分的平衡以及囊泡形态转变的角度,提出了一种LCST转变机制。据我们所知,本文所展示的工作是基于PEO的热敏囊泡的首次证明,这一发现可能有助于通过引入PEO链段来设计热敏核壳结构。

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