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Tunable dynamic hydrophobic attachment of guest molecules in amphiphilic core–shell polymers

机译:客体分子在两亲核壳聚合物中的可调谐动态疏水附着

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摘要

In this study, synthesis and dynamic properties of amphiphilic core-shell polymers are reported as monitored through their interaction with small amphiphilic molecules. Brush-like structures are formed with a hydrophobic core surrounded by a hydrophilic shell utilizing controlled radical addition-fragmentation chain transfer (RAFT) polymerization of macromonomers consisting of linear polyglycerol chains attached to alkylene methacrylate. Continuous wave electron paramagnetic resonance (CW EPR) spectroscopy is employed to study how the amphiphilic, paramagnetic spin probe 16-DSA (16-doxyl stearic acid) interacts with polymers of different alkylene chain lengths in their hydrophobic cores and different polyglycerol chain lengths in their hydrophilic shells. The spin probe exhibits dynamic hydrophobic attachment to the polymers and reveals an indirect, dynamics-based view of polymer effects such as temperature response, aggregation and ligand binding properties. Increasing the hydrophobic alkylene chain length in the polymers alters the physical properties of the core region significantly. A large set of controllable functional polymer properties can be adjusted by the degree of polymerization and alkylene spacer length. Partial aggregation of the polymers further modifies the binding properties. Applying dynamic light scattering (DLS), transmission electron microscopy (TEM) and molecular dynamic (MD) simulations, the complex dynamic behavior found with EPR spectroscopy was further complemented and verified.
机译:在这项研究中,据报道,通过与两亲小分子的相互作用监测,两亲核壳聚合物的合成和动力学性质。利用大分子单体的受控自由基加成-断裂链转移(RAFT)聚合反应,形成由具有亲水壳层的疏水核形成的刷状结构,大分子单体由连接至甲基丙烯酸亚烷基酯的线性聚甘油链组成。使用连续波电子顺磁共振(CW EPR)光谱研究两亲顺磁性自旋探针16-DSA(16-doxyl硬脂酸)如何与疏水核中不同亚烷基链长和聚合物中不同聚甘油链长的聚合物相互作用亲水壳。自旋探针表现出与聚合物的动态疏水连接,并揭示了基于间接基于动力学的聚合物效应,例如温度响应,聚集和配体结合特性。聚合物中疏水性亚烷基链长度的增加会显着改变核心区域的物理性质。可以通过聚合度和亚烷基间隔基长度来调节大量可控制的功能聚合物性能。聚合物的部分聚集进一步改变了结合性能。应用动态光散射(DLS),透射电子显微镜(TEM)和分子动力学(MD)模拟,进一步补充和验证了EPR光谱法发现的复杂动力学行为。

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