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用光触发核壳型 Au 纳米棒-微凝胶纳米复合材料的体积相转变。

Triggering the volume phase transition of core-shell Au nanorod-microgel nanocomposites with light.

机构信息

Photonics and Optoelectronics Group and CeNS, Physics Department, Ludwig-Maximilians-Universität München, Munich, Germany.

出版信息

Nanotechnology. 2011 Jun 17;22(24):245708. doi: 10.1088/0957-4484/22/24/245708. Epub 2011 May 4.

DOI:10.1088/0957-4484/22/24/245708
PMID:21543835
Abstract

We have coated gold nanorods (NRs) with thermoresponsive microgel shells based on poly(N-isopropylacrylamide) (pNIPAM). We demonstrate by simultaneous laser-heating and optical extinction measurements that the Au NR cores can be simultaneously used as fast optothermal manipulators (switchers) and sensitive optical reporters of the microgel state in a fully externally controlled and reversible manner. We support our results with optical modeling based on the boundary element method and 3D numerical analysis on the temperature distribution. Briefly, we show that due to the sharp increase in refractive index resulting from the optothermally triggered microgel collapse, the longitudinal plasmon band of the coated Au NRs is significantly red-shifted. The optothermal control over the pNIPAM shell, and thereby over the optical response of the nanocomposite, is fully reversible and can be simply controlled by switching on and off a NIR heating laser. In contrast to bulk solution heating, we demonstrate that light-triggering does not compromise colloidal stability, which is of primary importance for the ultimate utilization of these types of nanocomposites as remotely controlled optomechanical actuators, for applications spanning from drug delivery to photonic crystals and nanoscale motion.

摘要

我们在金纳米棒(NRs)表面包覆了基于聚(N-异丙基丙烯酰胺)(pNIPAM)的温敏微凝胶壳。我们通过同时的激光加热和光消光测量证明,Au NR 核可以同时作为快速光热操纵器(开关)和微凝胶状态的敏感光学报告器,以完全外部控制和可逆的方式。我们通过基于边界元法的光学建模和温度分布的 3D 数值分析来支持我们的结果。简而言之,我们表明,由于光热触发的微凝胶塌陷导致折射率急剧增加,包覆的 Au NR 的纵向等离子体带显著红移。对 pNIPAM 壳的光热控制,以及由此对纳米复合材料的光学响应的控制,是完全可逆的,可以通过打开和关闭近红外加热激光来简单地控制。与体相溶液加热相比,我们证明光触发不会损害胶体稳定性,这对于将这些类型的纳米复合材料最终用作远程控制的光机械致动器至关重要,其应用范围从药物输送到光子晶体和纳米级运动。

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