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Synthesis and Phase Transition of Poly(N-isopropylacrylamide)-Based Thermo-Sensitive Cyclic Brush Polymer

机译:聚(N-异丙基丙烯酰胺)基热敏环状刷聚合物的合成和相变

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摘要

Polymers with advanced topological architectures are promising materials for wide applications due to their structure-generated unique properties different from that of the linear analogues. The elegant integration of stimuli-responsive polymers with such advanced architectures can create novel materials with virtues from both moieties, are thus a hot subject of research for both fundamental and practical investigations. To fabricate cyclic brush polymer-based intelligent materials for biomedical applications, herein, we designed and synthesized thermo-sensitive cyclic brush polymers with poly(N-isopropylacrylamide) (PNIPAAm) brushes by controlled living radical polymerization using cyclic multimacroinitiator. The thermo-induced phase transition behaviors of the resultant cyclic brush polymers with different compositions were investigated in detail by temperature-dependent optical transmittance measurements, and compared with the properties of bottlebrush and linear counterparts. Interestingly, the cloud point transition temperature (Tcp) of cyclic brush PNIPAAm could be regulated by the chain length of PNIPAAm brush. Although the bottlebrush polymers with the same composition exhibited similarly structurally dependent Tcps behaviors to the cyclic brush polymers, the cyclic brush PNIPAAm did show higher critical aggregation concentration (CAC) and enhanced stability against dilution than the bottlebrush counterpart. The readily tailorable Tcps together with the ability to form highly stable nanoparticles makes thermo-sensitive cyclic brush PNIPAAm a promising candidate for controlled drug delivery.
机译:具有先进拓扑结构的聚合物由于其结构产生的独特特性与线性类似物不同,因此是具有广泛应用前景的材料。刺激反应性聚合物与这种先进结构的完美结合可以利用两个部分的优点创造出新颖的材料,因此成为基础研究和实际研究的热门研究课题。为了制造用于生物医学应用的基于环状刷聚合物的智能材料,我们在本文中使用环状多分子引发剂通过受控的活性自由基聚合设计并合成了具有聚(N-异丙基丙烯酰胺)(PNIPAAm)刷的热敏环状刷聚合物。通过与温度相关的透光率测量,详细研究了不同组成的环状刷聚合物的热诱导相变行为,并与瓶刷和线性对应物的性能进行了比较。有趣的是,循环刷PNIPAAm的浊点转变温度(Tcp)可以通过PNIPAAm刷的链长来调节。尽管具有相同组成的牙刷聚合物表现出与环状刷子聚合物类似的结构依赖性Tcps行为,但环状牙刷PNIPAAm确实显示出比牙刷同类更高的临界聚集浓度(CAC)和增强的抗稀释稳定性。易于定制的Tcps加上能够形成高度稳定的纳米颗粒的能力,使得热敏性循环刷PNIPAAm成为控制药物递送的有前途的候选者。

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