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层状聚合物纳米复合材料的可编程光控形状变化。

Programmable light-controlled shape changes in layered polymer nanocomposites.

机构信息

Department of Chemistry, Chemical Biology and Biomedical Engineering, Stevens Institute of Technology, Castle Point on Hudson, Hoboken, New Jersey 07030, United States.

出版信息

ACS Nano. 2012 Apr 24;6(4):3152-62. doi: 10.1021/nn204938j. Epub 2012 Apr 4.

Abstract

We present soft, layered nanocomposites that exhibit controlled swelling anisotropy and spatially specific shape reconfigurations in response to light irradiation. The use of gold nanoparticles grafted with a temperature-responsive polymer (poly(N-isopropylacrylamide), PNIPAM) with layer-by-layer (LbL) assembly allowed placement of plasmonic structures within specific regions in the film, while exposure to light caused localized material deswelling by a photothermal mechanism. By layering PNIPAM-grafted gold nanoparticles in between nonresponsive polymer stacks, we have achieved zero Poisson's ratio materials that exhibit reversible, light-induced unidirectional shape changes. In addition, we report rheological properties of these LbL assemblies in their equilibrium swollen states. Moreover, incorporation of dissimilar plasmonic nanostructures (solid gold nanoparticles and nanoshells) within different material strata enabled controlled shrinkage of specific regions of hydrogels at specific excitation wavelengths. The approach is applicable to a wide range of metal nanoparticles and temperature-responsive polymers and affords many advanced build-in options useful in optically manipulated functional devices, including precise control of plasmonic layer thickness, tunability of shape variations to the excitation wavelength, and programmable spatial control of optical response.

摘要

我们提出了柔软的分层纳米复合材料,其在光照射下表现出可控的各向异性溶胀和空间特定的形状重构。使用接枝有温敏聚合物(聚(N-异丙基丙烯酰胺),PNIPAM)的金纳米粒子进行层层(LbL)组装,允许将等离子体结构放置在薄膜中的特定区域,而光照射通过光热机制导致局部材料溶胀。通过在非响应性聚合物层之间分层接枝 PNIPAM 的金纳米粒子,我们已经实现了具有零泊松比的材料,其表现出可逆的、光诱导的单向形状变化。此外,我们报告了这些 LbL 组装体在其平衡溶胀状态下的流变性质。此外,在不同的材料层中掺入不同的等离子体纳米结构(固体金纳米粒子和纳米壳),可以在特定的激发波长下控制水凝胶的特定区域的收缩。该方法适用于广泛的金属纳米粒子和温敏聚合物,并提供了许多在光控功能器件中有用的内置选项,包括对等离子体层厚度的精确控制、形状变化对激发波长的可调性以及光响应的可编程空间控制。

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