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基于反应性聚合分子笼的新型纳米杂化材料的设计与制备。

Design and fabrication of a new class of nano hybrid materials based on reactive polymeric molecular cages.

机构信息

National Engineering Laboratory for Modern Silk, College of Textile and Clothing Engineering, Soochow University, Suzhou 215123, P.R. China.

出版信息

Langmuir. 2013 Sep 10;29(36):11498-505. doi: 10.1021/la4023085. Epub 2013 Aug 27.

Abstract

This paper describes a strategy of fabricating a new class of nano hybrid particles in terms of the "nanocages" of reactive molecular matrices/networks. The concept is to design molecular matrices functionalized with particular reactive groups, which can on-site synthesize and fix nanoparticles at the designated positions of the molecular networks. The cages of the molecular networks impose the confinement and protection to the nanoparticles so that the size and the stability of nano hybrid particles can be better controlled. To this end, polyamide network polymers (PNP) were synthesized and adopted as the reactive molecular cages for the control of silver nanoparticles formation. It follows that the silver nano hybrid particles fabricated by this method have an average diameter of 4.34 nm much smaller than any other or similar methods ie by a hyperbranched polyamide polymer (HB-PA). As per our design, the size of the silver nano hybrid particles can also be tuned by controlling the molar ratio between silver ions and the functional groups in the polymeric matrices. The silver nano hybrid particles reveal the substantially enhanced stability in aqueous solutions, which gives rise to the long stable performance of localized surface plasmon resonance. As the nano hybrid particles display long eminent nanoeffects, they exert broad implications for a wide range of applications such as biomedicine, catalysis, and optoelectronics.

摘要

本文描述了一种基于“纳米笼”的反应性分子基质/网络来制备新型纳米杂化粒子的策略。该策略的设计理念是设计带有特定反应性基团的功能化分子基质,这些基团可以在分子网络的指定位置原位合成和固定纳米粒子。分子网络的笼状结构对纳米粒子起到了限制和保护作用,从而可以更好地控制纳米杂化粒子的尺寸和稳定性。为此,合成了聚酰胺网络聚合物(PNP)并将其用作反应性分子笼,以控制银纳米粒子的形成。由此制备的银纳米杂化粒子的平均直径为 4.34nm,明显小于其他任何方法或类似方法(如超支化聚酰胺聚合物(HB-PA))。根据我们的设计,通过控制银离子与聚合物基质中官能团的摩尔比,也可以调整银纳米杂化粒子的尺寸。银纳米杂化粒子在水溶液中表现出显著增强的稳定性,这导致了局域表面等离子体共振的长期稳定性能。由于纳米杂化粒子具有长期显著的纳米效应,因此它们在生物医学、催化和光电子学等广泛应用领域具有广泛的意义。

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