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用于检测胺硅烷化驱动金纳米粒子自组装的无标记光学特性分析方法。

Label-free optical characterization methods for detecting amine silanization-driven gold nanoparticle self-assembly.

机构信息

National Biophotonics and Imaging Platform, School of Physical Sciences, Dublin City University, Glasnevin, Dublin 9, Ireland.

出版信息

Langmuir. 2011 Sep 6;27(17):10421-8. doi: 10.1021/la202364c. Epub 2011 Aug 5.

Abstract

Fluorescence lifetime correlation spectroscopy (FLCS) is presented as a single-step label-free detection method for probing the amine silanization-driven spontaneous 3D self-assembly of freestanding gold nanoparticles (GNPs) in solution. Unlike the conventional methods of studying self-assembly, for example, UV-vis spectroscopy and electron microscopy, FLCS utilizes the intrinsic gold fluorescence. The significance of this approach is to amalgamate the measurement of optical and hydrodynamic size properties simultaneously to achieve a more coherent description of the self-assembly pathway. GNP self-assembly has two-stage kinetics. Electrostatic interaction drives the initial amine silanization, and this is followed by siloxane bond formation between hydrolyzed ethoxy groups of GNP-attached APTES, resulting in the formation of micrometer-sized superstructures. The self-assembly has resulted in a 5-fold increase in the fluorescence lifetime (FL), and the FLCS study has shown an 8- to 10-fold increase in the diffusion coefficient using the pure diffusion model. This result is consistent with the transmission electron microscopy (TEM) observation, which shows a few hundred fold increase in the diameter due to assembly formation by the GNPs.

摘要

荧光寿命相关光谱(FLCS)被提出作为一种单步无标记检测方法,用于探测游离金纳米粒子(GNPs)在溶液中胺硅烷化驱动的自发 3D 自组装。与传统的自组装研究方法(例如 UV-vis 光谱和电子显微镜)不同,FLCS 利用金的固有荧光。这种方法的意义在于将光学和流体力学尺寸性质的测量合并,以实现对自组装途径的更连贯描述。GNPs 自组装具有两阶段动力学。静电相互作用驱动初始胺硅烷化,随后在 GNP 附着的 APTES 的水解乙氧基之间形成硅氧烷键,导致形成微米级的超结构。自组装导致荧光寿命(FL)增加了 5 倍,并且使用纯扩散模型的 FLCS 研究表明扩散系数增加了 8 到 10 倍。这一结果与透射电子显微镜(TEM)观察结果一致,TEM 观察结果表明由于 GNPs 的组装形成,直径增加了几百倍。

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