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首页> 外文期刊>Langmuir: The ACS Journal of Surfaces and Colloids >Design Principles for Thermoresponsive Core-Shell Nanoparticles: Controlling Thermal Transitions by Brush Morphology
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Design Principles for Thermoresponsive Core-Shell Nanoparticles: Controlling Thermal Transitions by Brush Morphology

机译:热响应核心壳纳米粒子的设计原理:通过刷形态控制热转变

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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 and future applications. We show how the thermal response of the shell influences the nanoparticle performance in biological fluids and interactions with proteins and cells, also under purely magnetic actuation of the nanoparticles through the superparamagnetic iron oxide core.
机译:在本特征文章中,我们总结了我们最近的理解工作和控制纳米颗粒的热行为,纳米颗粒与热型聚合物壳体接枝。单分散性超顺磁性氧化铁纳米晶体的精确合成与硝吡吡喃胺锚定热常数聚合物链的不可逆致密接枝。我们概述了生物学相关聚合物的致密和稳定接枝,包括聚(乙二醇),聚(N-异丙基丙烯酰胺),多肌酶和多氧化唑啉,可以实现。该平台使我们可以证明,如纳米颗粒核和相对聚合物刷尺寸所限制的聚合物刷几何形状决定了聚合物刷的热转变。我们还总结了我们对如何调整聚合物壳过渡和纳米粒子聚集的工作。通过核心和外壳的独立变化,我们可以优化和精确地控制我们系统的热控制溶解度。最后,我们的功能文章赋予与当前和未来应用相关的示例。我们展示了壳体的热响应如何影响生物流体中的纳米颗粒性能和与蛋白质和细胞的相互作用,也通过超顺磁性氧化铁芯的纯磁性致动。

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