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Design Principles for Thermoresponsive Core–ShellNanoparticles: Controlling Thermal Transitions by Brush Morphology

机译:热敏核壳设计原则纳米颗粒:通过刷子形态控制热转变

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摘要

In this feature article, we summarize our recent work on understanding and controlling the thermal behavior of nanoparticles grafted with thermoresponsive polymer shells. Precision synthesis of monodisperse superparamagnetic iron oxide nanocrystals was combined with irreversible dense grafting of nitrodopamide-anchored thermoresponsive polymer chains. We provide an overview of how the dense and stable grafting of biomedically relevant polymers, including poly(ethylene glycol), poly(N-isopropylacrylamide), polysarcosin, and polyoxazolines, can be achieved. This platform has made it possible for us to demonstrate that the polymer brush geometry, as defined by the nanoparticle core and relative polymer brush size, determines the thermal transitions of the polymer brush. We furthermore summarize our work on how the polymer shell transitions and nanoparticle aggregation can be tuned. With the independent variation of the core and the shell, we can optimize and precisely control the thermally controlled solubility of our system. Finally, our feature article gives examples relevant to current andfuture applications. We show how the thermal response of the shellinfluences the nanoparticle performance in biological fluids and interactionswith proteins and cells, also under purely magnetic actuation of thenanoparticles through the superparamagnetic iron oxide core.
机译:在这篇专题文章中,我们总结了我们最近在理解和控制接有热响应性聚合物壳的纳米颗粒的热行为方面的工作。单分散超顺磁性氧化铁纳米晶体的精确合成与硝基多巴胺锚定的热响应性聚合物链的不可逆密集接枝相结合。我们提供了有关如何实现生物医学相关聚合物(包括聚(乙二醇),聚(N-异丙基丙烯酰胺),聚肌氨酸蛋白和聚恶唑啉)的致密和稳定接枝的概述。这个平台使我们有可能证明聚合物刷的几何形状(由纳米粒子核和相对的聚合物刷尺寸决定)决定了聚合物刷的热转变。我们进一步总结了关于如何调节聚合物壳转变和纳米粒子聚集的工作。通过核和壳的独立变化,我们可以优化并精确控制系统的热控制溶解度。最后,我们的专题文章提供了与当前和未来的应用。我们展示了外壳的热响应影响纳米粒子在生物流体中的性能和相互作用蛋白质和细胞,也可以在纯磁力驱动下纳米粒子通过超顺磁性氧化铁核。

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